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  <front>
    <journal-meta>
      <journal-id journal-id-type="publisher-id">103</journal-id>
      <journal-id journal-id-type="index">urn:lsid:arphahub.com:pub:77d0745d-c3a1-5248-81de-8cdc02bed84a</journal-id>
      <journal-id journal-id-type="aggregator">urn:lsid:zoobank.org:pub:F56F6CF9-7502-4001-A751-35D5F2EF6CA0</journal-id>
      <journal-title-group>
        <journal-title xml:lang="en">Arthropod Systematics &amp; Phylogeny</journal-title>
        <abbrev-journal-title xml:lang="en">ASP</abbrev-journal-title>
      </journal-title-group>
      <issn pub-type="ppub">1863-7221</issn>
      <issn pub-type="epub">1864-8312</issn>
      <publisher>
        <publisher-name>Senckenberg Gesellschaft für Naturforschung</publisher-name>
      </publisher>
    </journal-meta>
    <article-meta>
      <article-id pub-id-type="doi">10.3897/asp.84.e175149</article-id>
      <article-id pub-id-type="publisher-id">175149</article-id>
      <article-categories>
        <subj-group subj-group-type="heading">
          <subject>Research Article</subject>
        </subj-group>
        <subj-group subj-group-type="biological_taxon">
          <subject>Proctotrupidae</subject>
        </subj-group>
        <subj-group subj-group-type="scientific_subject">
          <subject>Phylogeny</subject>
          <subject>Taxonomy</subject>
        </subj-group>
      </article-categories>
      <title-group>
        <article-title>Phylogenetic reconstruction of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Hymenoptera">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>)</article-title>
      </title-group>
      <contrib-group content-type="authors">
        <contrib contrib-type="author" corresp="yes">
          <name name-style="western">
            <surname>Abe</surname>
            <given-names>Junta</given-names>
          </name>
          <email xlink:type="simple">ff.my.j.r@gmail.com</email>
          <uri content-type="orcid">https://orcid.org/0000-0003-1835-6745</uri>
          <xref ref-type="aff" rid="A1">1</xref>
          <role content-type="http://credit.niso.org/contributor-roles/conceptualization/">Conceptualization</role>
          <role content-type="http://credit.niso.org/contributor-roles/writing-original-draft/">Writing - original draft</role>
          <role content-type="http://credit.niso.org/contributor-roles/data-curation/">Data curation</role>
          <role content-type="http://credit.niso.org/contributor-roles/funding-acquisition/">Funding acquisition</role>
          <role content-type="http://credit.niso.org/contributor-roles/investigation/">Investigation</role>
        </contrib>
        <contrib contrib-type="author" corresp="no">
          <name name-style="western">
            <surname>Mita</surname>
            <given-names>Toshiharu</given-names>
          </name>
          <uri content-type="orcid">https://orcid.org/0000-0001-8322-6045</uri>
          <xref ref-type="aff" rid="A2">2</xref>
          <role content-type="http://credit.niso.org/contributor-roles/conceptualization/">Conceptualization</role>
          <role content-type="http://credit.niso.org/contributor-roles/writing-review-editing/">Writing - review and editing</role>
          <role content-type="http://credit.niso.org/contributor-roles/funding-acquisition/">Funding acquisition</role>
          <role content-type="http://credit.niso.org/contributor-roles/supervision/">Supervision</role>
        </contrib>
      </contrib-group>
      <aff id="A1">
        <label>1</label>
        <addr-line content-type="verbatim">Entomological Laboratory, Graduate School of Bioresources and Bioenvironmental Sciences, Kyushu University, Motooka 744, Nishi-ku, Fukuoka 819-0395, Japan</addr-line>
        <institution>Entomological Laboralory, Graduate School of Bioresources and Bioenvironmental Sciences, Kyushu University</institution>
        <addr-line content-type="city">Fukuoka</addr-line>
        <country>Japan</country>
      </aff>
      <aff id="A2">
        <label>2</label>
        <addr-line content-type="verbatim">Entomological Laboratory, Faculty of Agriculture, Kyushu University, Motooka 744, Nishi-ku, Fukuoka 819-0395, Japan</addr-line>
        <institution>Entomological Laboratory, Faculty of Agriculture, Kyushu University</institution>
        <addr-line content-type="city">Fukuoka</addr-line>
        <country>Japan</country>
      </aff>
      <author-notes>
        <fn fn-type="corresp">
          <p>Corresponding author: Junta Abe (<email xlink:type="simple">ff.my.j.r@gmail.com</email>)</p>
        </fn>
      </author-notes>
      <pub-date pub-type="collection">
        <year>2026</year>
      </pub-date>
      <pub-date pub-type="epub">
        <day>12</day>
        <month>06</month>
        <year>2026</year>
      </pub-date>
      <volume>84</volume>
      <fpage>343</fpage>
      <lpage>370</lpage>
      <uri content-type="arpha" xlink:href="http://openbiodiv.net/039A094F-06B7-56FF-BFAD-0A8C3CB23A9D">039A094F-06B7-56FF-BFAD-0A8C3CB23A9D</uri>
      <uri content-type="zoobank" xlink:href="https://zoobank.org/62D9F109-B77C-4F41-AA6C-05BA54A9DBD0">62D9F109-B77C-4F41-AA6C-05BA54A9DBD0</uri>
      <history>
        <date date-type="received">
          <day>16</day>
          <month>10</month>
          <year>2025</year>
        </date>
        <date date-type="accepted">
          <day>02</day>
          <month>03</month>
          <year>2026</year>
        </date>
      </history>
      <permissions>
        <copyright-statement>Junta Abe, Toshiharu Mita</copyright-statement>
        <license license-type="creative-commons-attribution" xlink:href="http://creativecommons.org/licenses/by/4.0/" xlink:type="simple">
          <license-p>This is an open access article distributed under the terms of the Creative Commons Attribution License (CC BY 4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.</license-p>
        </license>
      </permissions>
      <self-uri content-type="zoobank" xlink:type="simple">https://zoobank.org/62D9F109-B77C-4F41-AA6C-05BA54A9DBD0</self-uri>
      <abstract>
        <p>
          <bold>Abstract</bold>
        </p>
        <p>Phylogenetic reconstruction of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name>, the largest subfamily of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, was conducted for the first time based on total evidence combining molecular and morphological characters. Based on our analysis, we conclude that the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>, previously belonging to the tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, should be transferred to the tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name>. New diagnostic characters for each genus were proposed based on the morphological analysis. The results of the analysis showed that the exceptionally hardened ovipositor sheath is a defining character of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, and it was estimated that its morphological character states were not reflected in the phylogenetic relationship, probably because of its variability related to parasitic strategy and host habitat.</p>
      </abstract>
      <kwd-group>
        <label>Key words</label>
        <kwd>functional trait</kwd>
        <kwd>
          <italic>
            <tp:taxon-name>
              <tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part>
            </tp:taxon-name>
          </italic>
        </kwd>
        <kwd>ovipositor sheath</kwd>
        <kwd>Palaearctic</kwd>
        <kwd>taxonomic replacement</kwd>
      </kwd-group>
      <funding-group>
        <funding-statement>Kyushu University Foundation sponsored by Robert T. Huang Entrepreneurship Center QREC of Kyushu University&#13;
the Sasakawa Scientific Research Grant from the Japan Science Society (project number: 2023-5012)&#13;
JST K2-SPRING (grant number: JPMJSP2136)&#13;
JSPS Bilateral Program (grant number: JPJSBP120249601)</funding-statement>
      </funding-group>
    </article-meta>
  </front>
  <body>
    <sec sec-type="1. Introduction" id="sec1">
      <title>1. Introduction</title>
      <p>The family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> Latreille, 1802 is the most species-rich family in the superfamily <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily" reg="Proctotrupoidea">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name> Latreille, 1802 (<xref ref-type="bibr" rid="B38">Kolyada and Chemyreva 2019</xref>). This family is distinguished by its strongly sclerotized ovipositor sheath and fore wing venation (<xref ref-type="bibr" rid="B46">Masner 1993</xref>). To date, the family is divided into three extant and one extinct subfamilies, three tribes, and 30 extant and 15 extinct genera, with a known count of 656 extant and 29 extinct species (Table <xref ref-type="table" rid="T1">1</xref>) (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>; <xref ref-type="bibr" rid="B41">Lin 1987</xref>, <xref ref-type="bibr" rid="B42">1988</xref>; <xref ref-type="bibr" rid="B11">Buhl 1998</xref>; <xref ref-type="bibr" rid="B16">Choi et al. 2016</xref>; <xref ref-type="bibr" rid="B27">He and Xu 2015</xref>; <xref ref-type="bibr" rid="B37">Kolyada 2016</xref>; <xref ref-type="bibr" rid="B39">Kolyada and Mostovski 2017</xref>; <xref ref-type="bibr" rid="B53">Park et al. 2017</xref>; <xref ref-type="bibr" rid="B10">Buffington et al. 2018</xref>; <xref ref-type="bibr" rid="B58">Rodríguez-Serrano and Zúñiga-Reinoso 2018</xref>; <xref ref-type="bibr" rid="B22">Engel et al. 2022</xref>; <xref ref-type="bibr" rid="B31">Izadizadeh et al. 2022</xref>; <xref ref-type="bibr" rid="B56">Rasnitsyn et al. 2022</xref>; <xref ref-type="bibr" rid="B38">Kolyada and Chemyreva 2023</xref>; <xref ref-type="bibr" rid="B2">Abe 2023</xref>, <xref ref-type="bibr" rid="B6">2024</xref>). Most previous studies of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> have focused on the species descriptions (e.g. <xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>; <xref ref-type="bibr" rid="B27">He and Xu 2015</xref>), and systematic studies are limited.</p>
      <table-wrap id="T1" position="float" orientation="portrait">
        <label>Table 1.</label>
        <caption>
          <p>Taxon list of the extant genera in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> and included taxa in the phylogenetic analysis.</p>
        </caption>
        <table>
          <tbody>
            <tr>
              <td rowspan="1" colspan="1">
                <bold>family</bold>
              </td>
              <td rowspan="1" colspan="1">
                <bold>subfamily</bold>
              </td>
              <td rowspan="1" colspan="1">
                <bold>tribe</bold>
              </td>
              <td rowspan="1" colspan="1">
                <bold>genus</bold>
              </td>
              <td rowspan="1" colspan="1">
                <bold>taxa examined</bold>
              </td>
            </tr>
            <tr>
              <td rowspan="30" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="3" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="subfamily" reg="Austroserphinae">Austroserphinae</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="3" colspan="1"/>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Acanthoserphus">Acanthoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Austrocodrus">Austrocodrus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Austroserphus">Austroserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="subfamily" reg="Heloriserphinae">Heloriserphinae</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="1" colspan="1"/>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Heloriserphus">Heloriserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="26" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="15" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Afroserphus">Afroserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Apoglypha">Apoglypha</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Fustiserphus">Fustiserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Pschornia">Pschornia</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Serphonostus">Serphonostus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Sminthoserphus">Sminthoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Trachyserphus">Trachyserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="10" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Carinaserphus">Carinaserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Glyptoserphus">Glyptoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Paracodrus">Paracodrus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Trichoserphus">Trichoserphus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1"/>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="family" reg="Heloridae">Heloridae</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="1" colspan="1"/>
              <td rowspan="1" colspan="1"/>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Helorus">Helorus</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
            <tr>
              <td rowspan="1" colspan="1">
                <tp:taxon-name>
                  <tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part>
                </tp:taxon-name>
              </td>
              <td rowspan="1" colspan="1"/>
              <td rowspan="1" colspan="1"/>
              <td rowspan="1" colspan="1">
                <italic>
                  <tp:taxon-name>
                    <tp:taxon-name-part taxon-name-part-type="genus" reg="Vanhornia">Vanhornia</tp:taxon-name-part>
                  </tp:taxon-name>
                </italic>
              </td>
              <td rowspan="1" colspan="1">○</td>
            </tr>
          </tbody>
        </table>
      </table-wrap>
      <p>Most previous phylogenetic studies have sampled the largest subfamily <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name>. This subfamily accounts for over 90 percent of the extant species and genera in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>; <xref ref-type="bibr" rid="B38">Kolyada and Chemyreva 2019</xref>). <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name> is divided into three tribes: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name>, and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B40">Kozlov 1970</xref>; <xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>). However, some genera have morphological characteristics inconsistent with the definition of the tribe. For example, the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> Brues, 1940, which belongs to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, has long notauli and a visible petiole (stalk in <xref ref-type="bibr" rid="B63">Townes and Townes (1981)</xref>). However, in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, the notauli are short or absent and the stalk is indistinct (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>). The definitions of genera and tribes are insufficient to distinguish them from each other and need to be reviewed, especially for <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>; <xref ref-type="bibr" rid="B39">Kolyada and Mostovski 2017</xref>).</p>
      <p>Historically, phylogenetic relationships within <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> have been largely overlooked. Although <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> have been included in broader phylogenetic studies of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Hymenoptera">Hymenoptera</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B21">Dowton and Austin 2001</xref>; <xref ref-type="bibr" rid="B28">Heraty et al. 2011</xref>; <xref ref-type="bibr" rid="B61">Sharkey et al. 2012</xref>; <xref ref-type="bibr" rid="B36">Klopstein et al. 2013</xref>; <xref ref-type="bibr" rid="B54">Peters et al. 2017</xref>; <xref ref-type="bibr" rid="B8">Blaimer et al. 2023</xref>), the relationships within the family remain unresolved due to limited taxon sampling. <xref ref-type="bibr" rid="B21">Dowton and Austin (2001)</xref> included the most number of genera relative to other studies based on multiple gene regions. Their study included six species in six genera of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name> Kieffer, 1911: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> Forster, 1856 in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> Kozlov, 1970, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> Hellén, 1941 and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Apoglypha">Apoglypha</tp:taxon-name-part></tp:taxon-name></italic> Townes &amp; Townes, 1981 in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> Kozlov, 1970, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic> Panzer, 1805, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> Kieffer, 1904, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic> Kieffer, 1908 in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> Kozlov, 1970. In their analysis, the tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name>, consisting only of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic>, was sister to the other tribes. Similarly, <xref ref-type="bibr" rid="B28">Heraty et al. (2011)</xref> included two subfamilies with three species in three genera: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Austroserphus">Austroserphus</tp:taxon-name-part></tp:taxon-name></italic> Dodd, 1933 in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Austroserphinae">Austroserphinae</tp:taxon-name-part></tp:taxon-name> Kozlov, 1980, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part></tp:taxon-name></italic> Latreille, 1802 in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name>. It was estimated that <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Austroserphus">Austroserphus</tp:taxon-name-part></tp:taxon-name></italic> is sister to the other two genera. <xref ref-type="bibr" rid="B8">Blaimer et al. (2023)</xref> analyzed Ultraconserved Elements (<abbrev xlink:title="Ultraconserved Elements">UCEs</abbrev>) of five species across five genera in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name>: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Afroserphus">Afroserphus</tp:taxon-name-part></tp:taxon-name></italic> Masner, 1961 in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part></tp:taxon-name></italic> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name>. Based on this analysis, the tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> was estimated to be a monophyletic group. Although the taxon sampling was limited, these broader analyses indicated that the family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> was monophyletic. <xref ref-type="bibr" rid="B13">Can and Aydemír (2025)</xref> focused on the subfamily <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name> and provided a mitochondrial COI tree that included 33 species in 13 genera (Fig. <xref ref-type="fig" rid="F17">17</xref> in <xref ref-type="bibr" rid="B13">Can and Aydemír (2025</xref>)). Although they focused on the availability of the COI barcode, they estimated that <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> were monophyletic. Further intensive taxon sampling is required to understand the phylogenetic relationships among the proctotrupid taxa.</p>
      <p>Therefore, given the limited systematic attention given to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, our objective is to re-evaluate the morphology of the family and to reconstruct the internal phylogeny based on both morphological and molecular data. In light of our results, we also consider the classification of tribes and genera of Palaearctic <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name>.</p>
    </sec>
    <sec sec-type="2. Materials and methods" id="sec2">
      <title>2. Materials and methods</title>
      <sec sec-type="2.1. Taxon sampling" id="sec3">
        <title>2.1. Taxon sampling</title>
        <p>A total of 35 species in 15 genera in three tribes of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name> were sampled as ingroups (Table <xref ref-type="table" rid="T1">1</xref>). Taxa were chosen to cover the taxonomic range of genera in the subfamily <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name>. The type species were included in 12 genera. Outgroup taxa were selected based on the phylogenetic relationships shown in <xref ref-type="bibr" rid="B8">Blaimer et al. (2023)</xref>. These outgroups were four species in two genera: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Vanhornia">Vanhornia</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="hikosanensis">hikosanensis</tp:taxon-name-part></tp:taxon-name></italic> Abe, Yamagishi &amp; Konishi, 2024 and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Vanhornia">V.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="yurii">yurii</tp:taxon-name-part></tp:taxon-name></italic> Timokhov &amp; Belokobylskij, 2020 in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name> Crawford, 1909, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Helorus">Helorus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="ruficornis">ruficornis</tp:taxon-name-part></tp:taxon-name></italic> Foerster, 1856 and unidentified species in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Heloridae">Heloridae</tp:taxon-name-part></tp:taxon-name> Foerster, 1856.</p>
        <p>Voucher specimens were deposited in the following institutions and detailed information on all the samples is provided in Table SS1.</p>
        <p>This study is based on specimens deposited in the following institutions: <bold><named-content content-type="dwc:institutional_code" xlink:title="Kyushu University, Entomology Laboratory" xlink:href="https://scientific-collections.gbif.org/institution/8e1d97d6-1ddd-42c4-ba43-2f88e779fdc1">ELKU</named-content></bold> – Entomological Laboratory, Faculty of Agriculture, Kyushu University, Fukuoka, Japan; <bold><abbrev xlink:title="Nagoya Biodiversity Center, Nagoya, Japan">NBC</abbrev></bold> – Nagoya Biodiversity Center, Nagoya, Japan; <bold><named-content content-type="dwc:institutional_code" xlink:title="National Agriculture and Food Research Organization" xlink:href="https://scientific-collections.gbif.org/institution/352e8dcc-9081-4221-a149-b56e205395b3">NARO</named-content></bold> – Insect Museum, National Agriculture and Food Research Organization, Tsukuba, Japan; <bold><abbrev content-type="institution" xlink:title="Ehime University Museum, Matsuyama, Ehime, Japan">EUM</abbrev></bold> – Ehime University Museum, Matsuyama, Ehime, Japan; <bold><abbrev content-type="institution" xlink:title="Kanagawa Prefectural Museum of Natural History, Odawara, Japan">KPMNH</abbrev></bold> – Kanagawa Prefectural Museum of Natural History, Odawara, Japan; <bold><abbrev content-type="institution" xlink:title="Osaka Museum of Natural History, Osaka, Japan">OMNH</abbrev></bold> – Osaka Museum of Natural History, Osaka, Japan; <bold><named-content content-type="dwc:institutional_code" xlink:title="Laboratory of Systematic Entomology, The Hokkaido University Museum, Hokkaido University, Sapporo, Japan" xlink:href="https://scientific-collections.gbif.org/institution/9d781c7b-55d1-4fc5-b2ed-0cb83eca1267">SEHU</named-content></bold> – Hokkaido University Insect Collection, Sapporo, Japan; <bold><named-content content-type="dwc:institutional_code" xlink:title="Taiwan Agricultural Research Institute" xlink:href="https://scientific-collections.gbif.org/institution/02b22bf1-5982-43f5-95d3-8a83e9f056d3">TARI</named-content></bold> – Taiwan Agricultural Research Institute, Taichung, Taiwan.</p>
      </sec>
      <sec sec-type="2.2. Morphological terms, character matrix, and photography" id="sec4">
        <title>2.2. Morphological terms, character matrix, and photography</title>
        <p>All terms of proctotrupid morphology followed <xref ref-type="bibr" rid="B63">Townes and Townes (1981)</xref>, <xref ref-type="bibr" rid="B23">Ernst et al. (2013)</xref>, <xref ref-type="bibr" rid="B12">Butcher and Quicke (2023)</xref>, <xref ref-type="bibr" rid="B19">Dal Pos et al. (2023)</xref> and the <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Hymenoptera">Hymenoptera</tp:taxon-name-part></tp:taxon-name> Anatomy and Ontology (<abbrev xlink:title="Hymenoptera Anatomy and Ontology">HAO</abbrev>) (<xref ref-type="bibr" rid="B67">Yoder et al. 2010</xref>).</p>
        <p>Morphological data were scored for the included taxa based on physical examination of all specimens. Biological characteristics were coded according to previous records and were included in the matrix. The character matrix is presented in Table S2.</p>
        <p>Photographs, except for the dissected parts, were taken using a Canon MP-E65 mm macro lens mounted on α Sony 7R IV digital camera. Individual photos were stack-combined with a Zerene Stacker (Zerene Systems LLC) and processed in Adobe Photoshop CC (Adobe).</p>
        <p>We dissected a part of specimen in our taxon sampling to examine the female terminalia. The dissected parts were sorted using 10% KOH solution and mounted in Euparal on a glass slide. Photographs of the dissected parts were taken using Olympus SZX7 and Nikon ECLIPSE Ci–L microscopes.</p>
      </sec>
      <sec sec-type="2.3. DNA extraction, sequence, and alignment" id="sec5">
        <title>2.3. DNA extraction, sequence, and alignment</title>
        <p>For DNA extraction, 29 species in 15 genera within the ingroup and four species in two families within the outgroup were used (85% of OTUs). Voucher specimens were included among the examined specimens used to construct the matrix (Tables S1, S3). DNA was extracted from a single leg of each specimen using the protocols in the DNeasy Blood and Tissue kit (Qiagen, Japan). Four gene regions, mitochondrial 16S, nuclear 18S, 28S D2–3, and RNA polymerase II (<abbrev xlink:title="polymerase II">POLII</abbrev>), were amplified. PCRs were carried out using 10 μL reactions containing 1 μL DNA, 0.3 μL of forward primer, 0.3 μL of reverse primer, 5 μL KOD One Mix Blue (Toyobo, Japan) and 3.4 μL RNAse free water. The primers used are listed in Table S4. The PCR products were purified using ExoSAP-IT Express (Thermo Fisher Scientific, Tokyo, Japan) and subjected to Sanger sequencing at Azenta Life Science (Tokyo, Japan). Sequencing data were deposited in the DDBJ under the accession numbers listed in Table S3.</p>
        <p>All sequencing data were aligned by L-INS-i method (<xref ref-type="bibr" rid="B33">Katoh et al. 2005</xref>) under the auto strategy setting using Mafft 7 (<xref ref-type="bibr" rid="B34">Katoh et al. 2019</xref>) (online). The aligned data were trimmed using option “-automated1” that uses a heuristic selection of the automatic method based on similarity statistics in Trimal 1.5 (<xref ref-type="bibr" rid="B14">Capella-Gutierrez et al. 2009</xref>).</p>
      </sec>
      <sec sec-type="2.4. Model selection and phylogenetic analysis" id="sec6">
        <title>2.4. Model selection and phylogenetic analysis</title>
        <p>Maximum likelihood (<abbrev xlink:title="Maximum likelihood">ML</abbrev>), Bayesian inference (<abbrev xlink:title="Bayesian inference">BI</abbrev>), and maximum parsimony analyses were conducted. The maximum parsimony analysis was conducted based on morphological data. <abbrev xlink:title="Maximum likelihood">ML</abbrev> and <abbrev xlink:title="Bayesian inference">BI</abbrev> analyses were conducted based on DNA and total evidence combined with DNA and morphological data. The best substitution models for all the analyses were estimated using Modelfinder (<xref ref-type="bibr" rid="B32">Kalyaanamoorthy et al. 2017</xref>).</p>
        <p>For <abbrev xlink:title="Maximum likelihood">ML</abbrev>, the best-fit models for each gene region are represented in Table S5. The analysis was performed using Iqtree ver. 2.4 (<xref ref-type="bibr" rid="B49">Minh et al. 2020</xref>), with 1000 replicates of an Ultrafast bootstrap (<xref ref-type="bibr" rid="B29">Hoang et al. 2018</xref>) and an <abbrev xlink:title="SH-aLRT value">SH</abbrev>-like approximate likelihood ratio test (<xref ref-type="bibr" rid="B26">Guindon et al. 2010</xref>). We conducted the analysis 11 times individually, checked that each results showed same topology, and selected the tree that had the median log-likelihood.</p>
        <p>For BL, the best fit models were searched using option “-mset mrbayes”. The proposed models are presented in Table S5. <abbrev xlink:title="Bayesian inference">BI</abbrev> analysis was conducted using Mrbayes ver. 3.2.7a (<xref ref-type="bibr" rid="B59">Ronquist et al. 2012</xref>). All parameters were unlinked between each partition. We run two independent runs with eight chains each for 50 million generations, sampling 5000 generations. After verifying the average standard deviation of split frequencies (<abbrev xlink:title="average standard deviation of split frequencies">ASDSF</abbrev>) less than 0.01, we excluded the first 25% of sampled trees as burn-in for diagnosis, and we used same burn-in to summarize the parameters and trees. We used Tacer v1.7.2 (<xref ref-type="bibr" rid="B57">Rambaut et al. 2018</xref>) to check that the Markov chain Monte Carlo (<abbrev xlink:title="Markov chain Monte Carlo">MCMC</abbrev>) runs reached a state of convergence and the effective sample size (<abbrev xlink:title="effective sample size">ESS</abbrev>) was over 200 in all parameters.</p>
        <p>The maximum parsimony analysis was conducted under both non-additive and implied weighting using TNT ver 1.6 (<xref ref-type="bibr" rid="B25">Goloboff and Morales 2023</xref>). The equal weighting analysis was conducted under default settings, except for the following: memory was set to 99,999 trees, 30,000 replicates, and 3,000 trees saved per replication in the traditional searches. The implied weighting analysis was conducted using an implied weighting search (k=5.0000) under the same settings in the equal weighting analysis. The GC values were calculated using 1,000 replicates in both analyses. The supporting unambiguous characters were shown by Asado ver. 2.0 (previously named Winclada 1.00.08) (<xref ref-type="bibr" rid="B51">Nixon 2002</xref>).</p>
      </sec>
      <sec sec-type="2.5. Ancestral state reconstructions" id="sec7">
        <title>2.5. Ancestral state reconstructions</title>
        <p>To mapping the characteristics on the estimated tree, we performed ancestral state reconstructions (<abbrev xlink:title="ancestral state reconstructions">ASR</abbrev>) in Mesquite v3.80 (<xref ref-type="bibr" rid="B43">Maddison and Maddison 2023</xref>) on three biological characters, host taxon, habitat of host, and parasitism. The character states were based on reference data and listed in Table S6. We used the <abbrev xlink:title="Bayesian inference">BI</abbrev> tree based on total evidence as topological tree. We used a maximum likelihood reconstruction with equal rate model (Mk1).</p>
      </sec>
    </sec>
    <sec sec-type="3. Results" id="sec8">
      <title>3. Results</title>
      <sec sec-type="3.1. Morphological characters and states for the phylogenetic analyses" id="sec9">
        <title>3.1. Morphological characters and states for the phylogenetic analyses</title>
        <p>(see Figs <xref ref-type="fig" rid="F1">1</xref>, <xref ref-type="fig" rid="F2">2</xref>, <xref ref-type="fig" rid="F3">3</xref>, <xref ref-type="fig" rid="F4">4</xref>, <xref ref-type="fig" rid="F5">5</xref>, <xref ref-type="fig" rid="F6">6</xref>, <xref ref-type="fig" rid="F7">7</xref>, <xref ref-type="fig" rid="F8">8</xref>, <xref ref-type="fig" rid="F9">9</xref>, <xref ref-type="fig" rid="F10">10</xref>, <xref ref-type="fig" rid="F11">11</xref>, <xref ref-type="fig" rid="F12">12</xref>, <xref ref-type="fig" rid="F13">13</xref>, <xref ref-type="fig" rid="F14">14</xref>, <xref ref-type="fig" rid="F15">15</xref>, <xref ref-type="fig" rid="F16">16</xref>, <xref ref-type="fig" rid="F17">17</xref>; Table S2 for the matrix and <abbrev xlink:title="ancestral state reconstructions">ASR</abbrev> (Table S6))</p>
        <fig id="F1">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure1</object-id>
          <object-id content-type="arpha">ADB92451-B38E-5FA7-9F7E-B43584C44327</object-id>
          <label>Figure 1.</label>
          <caption>
            <p>Head of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="aculeator">aculeator</tp:taxon-name-part></tp:taxon-name></italic>. <bold>A</bold> anterior view; <bold>B</bold> lateral view; <bold>C</bold> posterior view. Abbreviations: lf = length of face (distance between anterior ocellus and ventral margin of clypeus); aoc = anterior ocellus; poc = posterior ocellus; anf = antennal foramen; cl = clypeus; md = mandible; mxp = maxillary palp; upg = upper part of gena; vrx = vertex; occ = occipital carina; hyc = hypostomal carina (=oral carina in Townes &amp; Townes (1981)).</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g001.jpg" id="oo_1676526.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676526</uri>
          </graphic>
        </fig>
        <fig id="F2">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure2</object-id>
          <object-id content-type="arpha">41808554-4082-5AD1-8EA9-6820680E68F8</object-id>
          <label>Figure 2.</label>
          <caption>
            <p>Mesosoma of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="flavipes">flavipes</tp:taxon-name-part></tp:taxon-name></italic>, lateral view. Abbreviations: prsh = pronotal shoulder; msp = mesothoracic spiracle; ep = epomia; scr = scrobe (= impressed area on lateral part of pronotum); spec = speculum; mees = mesopleural suture (= mesepimeral sulcus in <abbrev xlink:title="Hymenoptera Anatomy and Ontology">HAO</abbrev>); hg = horizontal groove (= transepistonal line in <abbrev xlink:title="Hymenoptera Anatomy and Ontology">HAO</abbrev>); msa = metapleural smooth area.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g002.jpg" id="oo_1676527.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676527</uri>
          </graphic>
        </fig>
        <fig id="F3">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure3</object-id>
          <object-id content-type="arpha">A36BE999-5992-5D23-881B-DED88A8555A9</object-id>
          <label>Figure 3.</label>
          <caption>
            <p>Mesosoma of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="striatus">striatus</tp:taxon-name-part></tp:taxon-name></italic>, dorsal view. <bold>A</bold> mesonotum, mesoscutum, and scutellum; <bold>B</bold> posterior half of mesoscutum, metanotum, and propodeum. Abbreviations: pnk = pronotal neck (=collar in Townes &amp; Townes (1981)); prsh = pronotal shoulder; not = notaulus; ax = axilla; sss = scutoscutellar sulcus (= prescutellar groove in Townes &amp; Townes (1981)); scu = scutellum; msct = metascutellum; mnt = metanotal trough; dppd = dorsal part of propodeum; pppd = posterior part of propodeum.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g003.jpg" id="oo_1676528.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676528</uri>
          </graphic>
        </fig>
        <fig id="F4">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure4</object-id>
          <object-id content-type="arpha">DD69E2A2-288E-52AA-AA6C-FE7A1D9F1E93</object-id>
          <label>Figure 4.</label>
          <caption>
            <p>Fore wing venation of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>. Abbreviations: ls = length of stigma (= depth of stigma in Townes &amp; Townes (1981)); ws = width of stigma; R1 (= costal vein of radial cell in Townes &amp; Townes (1981)); r-rs (= vertical part of radius in Townes &amp; Townes (1981)); 2RS (= radius in Townes &amp; Townes (1981)); 1RS = (= intercubius in Townes &amp; Townes (1981)).</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g004.jpg" id="oo_1676529.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676529</uri>
          </graphic>
        </fig>
        <fig id="F5">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure5</object-id>
          <object-id content-type="arpha">E551442E-D1A1-5321-B81C-2C2EB39A842B</object-id>
          <label>Figure 5.</label>
          <caption>
            <p>Metasoma. <bold>A</bold> lateral habitus; <bold>B</bold> anterio-lateral part; <bold>C</bold> antero-dorsal part. <bold>A</bold>, <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="chikoi">chikoi</tp:taxon-name-part></tp:taxon-name></italic>. Abbreviations: aps = anterior part of stalked petiole; st = stalked petiole (anterior part of synsternite); syt = syntergite; 3vv = ovipositor sheath (= third valvula in <abbrev xlink:title="Hymenoptera Anatomy and Ontology">HAO</abbrev>); mgs = multiple grooves on base of syntergite; 1trd = 1st thyridium.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g005.jpg" id="oo_1676530.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676530</uri>
          </graphic>
        </fig>
        <fig id="F6">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure6</object-id>
          <object-id content-type="arpha">640E9CBE-1B19-580C-93E3-C6846C08CCB0</object-id>
          <label>Figure 6.</label>
          <caption>
            <p>Female terminalia of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic>, anterior to left. <bold>A</bold> bright filed; <bold>B</bold> diagram of these characters. Abbreviations: 1vf = first valvifer; 2vf = second valvifer; 3vv = ovipositor sheath (= third valvula in <abbrev xlink:title="Hymenoptera Anatomy and Ontology">HAO</abbrev>).</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g006.jpg" id="oo_1676531.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676531</uri>
          </graphic>
        </fig>
        <p>In total, 157 states from 65 morphological characters and eight states from three biological characters were coded.</p>
        <p>
          <bold>Antenna</bold>
        </p>
        <p>0 Shape of flagellomere 9 and 10: 0, bullet-shaped (Fig. <xref ref-type="fig" rid="F7">7A</xref>); 1, rectangular (Fig. <xref ref-type="fig" rid="F7">7B</xref>).</p>
        <fig id="F7">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure7</object-id>
          <object-id content-type="arpha">607C1D3A-4DF5-505C-BFE0-2D75EFCFB300</object-id>
          <label>Figure 7.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold> flagellomere 8–11 in female. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="leleji">leleji</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="viator">viator</tp:taxon-name-part></tp:taxon-name></italic>. <bold>C</bold>, <bold>D</bold> flagellomere in male. <bold>C</bold> flagellomere 4–6 of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="areolator">areolator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>D</bold> flagellomere 1–6 of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="arcuator">arcuator</tp:taxon-name-part></tp:taxon-name></italic>. <bold>E</bold> ventral view of head of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="scymni">scymni</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicate clypeus protruded. <bold>F</bold> anterior view of head of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="parvulus">parvulus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g007.jpg" id="oo_1676532.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676532</uri>
          </graphic>
        </fig>
        <p>1 Tyloid on flagellum in male: 0, tyloid absent; 1, absent on F11; 2, present on F11.</p>
        <p>2 Shape of tyloid on flagellum in male: 0, tyloid absent; 1, ridge (Fig. <xref ref-type="fig" rid="F7">7C</xref>); 2, round (Fig. <xref ref-type="fig" rid="F7">7D</xref>).</p>
        <p><bold>Head</bold> (Fig. <xref ref-type="fig" rid="F1">1</xref>)</p>
        <p>3 Length of face compared to inner distance between eyes: 0, 1.1&lt;; 1, 1.1–1.3; 2, &lt;1.3</p>
        <p>4 Shape of clypeus, as seen in ventral view: 0, normal or weakly protruded; 1, strongly protruded (Fig. <xref ref-type="fig" rid="F7">7E</xref>).</p>
        <p>5 Ventral margin of clypeus: 0, almost straight (Fig. <xref ref-type="fig" rid="F7">7F</xref>); 1, curved (strongly concave in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> (Fig. <xref ref-type="fig" rid="F8">8A</xref>), weakly convex in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> Brues, 1940 (Fig. <xref ref-type="fig" rid="F8">8B</xref>)).</p>
        <fig id="F8">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure8</object-id>
          <object-id content-type="arpha">29226338-61C2-5729-B84C-4CE0C3C8D4F0</object-id>
          <label>Figure 8.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold>–<bold>D</bold> anterior view of head; <bold>E</bold> lateral view of head. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="afissae">afissae</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="areolator">areolator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="aculeator">aculeator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicates subapical teeth on mandible; <bold>E</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="afissae">afissae</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicates developed gena.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g008.jpg" id="oo_1676533.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676533</uri>
          </graphic>
        </fig>
        <p>6 Length of ventral margin of clypeus compared to inner distance between eyes: 0, 0.4≦; 1, &lt;0.4.</p>
        <p>7 Mandible, as seen in anterior view of head: 0, weak and thin (Fig. <xref ref-type="fig" rid="F8">8A</xref>); 1, stout (Fig. <xref ref-type="fig" rid="F8">8C</xref>).</p>
        <p>8 Subapical teeth on mandible: 0, absent; 1, present (Fig. <xref ref-type="fig" rid="F8">8D</xref>).</p>
        <p>9 Gena: 0, not bulge; 1, bulge, almost carinate (in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>, Fig. <xref ref-type="fig" rid="F8">8E</xref>). This character called “cheek” in <xref ref-type="bibr" rid="B63">Townes and Townes (1981)</xref> and <xref ref-type="bibr" rid="B27">He and Xu (2015)</xref>.</p>
        <p>10 Malar sulcus: 0, absent; 1, present (sometimes incomplete).</p>
        <p>11 Shape of temple in dorsal view: 0, almost flat (Fig. <xref ref-type="fig" rid="F9">9A</xref>); 1, round bulge (Fig. <xref ref-type="fig" rid="F9">9B</xref>).</p>
        <fig id="F9">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure9</object-id>
          <object-id content-type="arpha">EABBD0FB-FABE-5EB7-B2A9-22CDC4BA2CEF</object-id>
          <label>Figure 9.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold>, <bold>B</bold>, <bold>D</bold> dorsal view of head; <bold>C</bold> anterior view of head; <bold>E</bold> dorso-lateral view of head and pronotum; <bold>F</bold> posterior view of head. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="striatus">striatus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="ciliatus">ciliatus</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicates round temple; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="iyokpe">iyokpe</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicates small projection between antennal foramen; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="cristatus">cristatus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>E</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="afissae">afissae</tp:taxon-name-part></tp:taxon-name></italic>, arrows indicate fovea on vertex; <bold>F</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="striatus">striatus</tp:taxon-name-part></tp:taxon-name></italic>, red arrow indicates occipital carina and white arrow indicate wrinkles on occipital carina.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g009.jpg" id="oo_1676534.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676534</uri>
          </graphic>
        </fig>
        <p>12 Distinct ridge between antennal foramina: 0, absent; 1, present (Fig. <xref ref-type="fig" rid="F9">9D</xref>).</p>
        <p>13 Structure between antennal foramina: 0, absent; 1, foveate; 2, small projection (Fig. <xref ref-type="fig" rid="F9">9C</xref>); 3, short carina (different structure from clear ridge in Char.12).</p>
        <p>14 Fovea on vertex: 0, absent; 1, present (in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>, Fig. <xref ref-type="fig" rid="F9">9E</xref>).</p>
        <p>15 Occipital carina: 0, incomplete (only dorsal half or shorter); 1, complete or almost complete.</p>
        <p>16 Margin of occipital carina: 0, smooth; 1, with wrinkles (in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic> Lin, 1988, Fig. <xref ref-type="fig" rid="F9">9F</xref>).</p>
        <p>17 Hypostomal carina: 0, distinctly separate from occipital carina (Fig. <xref ref-type="fig" rid="F10">10A</xref>); 1, reaching or almost reaching occipital carina (Fig. <xref ref-type="fig" rid="F10">10B</xref>).</p>
        <fig id="F10">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure10</object-id>
          <object-id content-type="arpha">56889B6D-F37B-5D81-AE59-32C5C760D291</object-id>
          <label>Figure 10.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold>, <bold>B</bold> posterior view of head; <bold>C</bold> dorsal part of pronotum; <bold>D</bold>–<bold>F</bold>, lateral part of pronotum. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="leleji">leleji</tp:taxon-name-part></tp:taxon-name></italic>, white arrow indicates occipital carina, and red arrow indicates hypostomal carina; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="aculeator">aculeator</tp:taxon-name-part></tp:taxon-name></italic>, white arrow indicates occipital carina, and red arrow indicates hypostomal carina; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> sp., arrows indicate inner pits of pronotal shoulder; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="iyokpe">iyokpe</tp:taxon-name-part></tp:taxon-name></italic>, white arrow indicates lateral margin of pronotal shoulder, and red arrow indicates lateral apex of pronotal shoulder; <bold>E</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="ciliatus">ciliatus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>F</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="striatus">striatus</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicate the longitudinal groove.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g010.jpg" id="oo_1676535.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676535</uri>
          </graphic>
        </fig>
        <p><bold>Mesosoma</bold> (Figs <xref ref-type="fig" rid="F2">2</xref>, <xref ref-type="fig" rid="F3">3</xref>)</p>
        <p>18 Dorsal part of pronotum: 0, smooth; 1, partly foveolate (sometimes weakly); 2, rugose.</p>
        <p>19 Ratio of pronotal length (from dorso-lateral margin to ventro-lateral margin) to width (from ventro-lateral margin of pronotal shoulder to postero-lateral margin of pronotum) (Fig. <xref ref-type="fig" rid="F2">2</xref>): 0, 1.2&lt;; 1, ≦1.2.</p>
        <p>20 Inner pit of pronotal shoulder: 0, absent (Fig. <xref ref-type="fig" rid="F3">3A</xref>); 1, present (Fig. <xref ref-type="fig" rid="F10">10C</xref>). In <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, pronotum sticks out dorso-laterally (Figs <xref ref-type="fig" rid="F2">2</xref>, <xref ref-type="fig" rid="F3">3A</xref>) and it is called “pronotal shoulder”.</p>
        <p>21 Lateral margin of pronotal shoulder: 0, not carinate, fused with anterior part and lateral part; 1, developed and carinate (Fig. <xref ref-type="fig" rid="F10">10D</xref>).</p>
        <p>22 Lateral apex of pronotal shoulder: 0, round (Fig. <xref ref-type="fig" rid="F10">10E</xref>); 1, weakly projecting (Fig. <xref ref-type="fig" rid="F10">10F</xref>); 2, projecting (Fig. <xref ref-type="fig" rid="F10">10D</xref>).</p>
        <p>23 Longitudinal groove on pronotum: 0, absent; 1, present (Fig. <xref ref-type="fig" rid="F10">10F</xref>).</p>
        <p>24 Epomia: 0, reaching anteriorly and not connecting to pronotal shoulder (Fig. <xref ref-type="fig" rid="F10">10F</xref>); 1, reaching dorsally and connecting pronotal shoulder (Fig. <xref ref-type="fig" rid="F10">10D</xref>).</p>
        <p>25 Mesothoracic spiracle: 0, touching postero-lateral margin of pronotum (Fig. <xref ref-type="fig" rid="F10">10D</xref>); 1, separated from postero-lateral margin of pronotum (Fig. <xref ref-type="fig" rid="F10">10E</xref>).</p>
        <p>26 Length of notaulus: 0, notaulus absent; 1, short (same as length of tegula, Fig. <xref ref-type="fig" rid="F3">3A</xref>); 2, long (reaching to mid length of mesoscutum, Fig. <xref ref-type="fig" rid="F11">11A, B</xref>).</p>
        <fig id="F11">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure11</object-id>
          <object-id content-type="arpha">89F6B8BB-4518-573C-8D65-D0EDAABDDC31</object-id>
          <label>Figure 11.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold> dorsal view of mesoscutum; <bold>B</bold> dorso-lateral view of mesoscutum; <bold>C</bold>, <bold>D</bold> ateral view of mesopleuron. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="areolator">areolator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="afissae">afissae</tp:taxon-name-part></tp:taxon-name></italic>; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="arcuator">arcuator</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicates fovea on mesepimeral sulcus; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicates fovea on mesepimeral sulcus.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g011.jpg" id="oo_1676536.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676536</uri>
          </graphic>
        </fig>
        <p>27 Shape of notaulus: 0, notaulus absent; 1, straight; 2, more or less curved.</p>
        <p>28 Horizontal groove on mesopleuron (Fig. <xref ref-type="fig" rid="F2">2</xref>): 0, absent; 1, present. This character listed in <abbrev xlink:title="Hymenoptera Anatomy and Ontology">HAO</abbrev> as transepisternal line (see discussion).</p>
        <p>29 Shape of horizontal groove: 0, straight (Fig. <xref ref-type="fig" rid="F11">11C, D</xref>); 1, weakly curved; 2, curved or strongly curved (Fig. <xref ref-type="fig" rid="F12">12A</xref>).</p>
        <fig id="F12">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure12</object-id>
          <object-id content-type="arpha">67E6FEC9-CBC1-518F-8B0F-D1F1A6E0F00C</object-id>
          <label>Figure 12.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold> lateral part of mesopleuron; <bold>B</bold> ventral part of mesopleuron; <bold>C</bold>–<bold>F</bold> lateral part of metapleuron. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="scymni">scymni</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>, foveation on mesodiscrimen weak; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="viator">viator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="elongatus">elongatus</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicate metapleural smooth area; <bold>E</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="flavipes">flavipes</tp:taxon-name-part></tp:taxon-name></italic>; <bold>F</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic>.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g012.jpg" id="oo_1676537.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676537</uri>
          </graphic>
        </fig>
        <p>30 Mesepimeral sulcus: 0, smooth; 1, punctate to foveolate, each fovea clearly separate (Fig. <xref ref-type="fig" rid="F11">11C</xref>); 2, strongly foveolate, each fovea close and almost contiguous (Fig. <xref ref-type="fig" rid="F11">11D</xref>). This character is called as mesopleural suture in <xref ref-type="bibr" rid="B63">Townes and Townes (1981)</xref> and <xref ref-type="bibr" rid="B27">He and Xu (2015)</xref>.</p>
        <p>31 Fovea on mesopleural suture: 0, absent (mesopleural suture smooth); 1, present in dorsal half (Fig. <xref ref-type="fig" rid="F11">11C</xref>); 2, almost complete to complete (Fig. <xref ref-type="fig" rid="F11">11D</xref>).</p>
        <p>32 Mesodiscrimen: 0, smooth (without foveation); 1, posterior half foveolate; 2, evenly foveolate (Fig. <xref ref-type="fig" rid="F12">12B</xref>). Sometimes the foveation is weak.</p>
        <p>33 Anterior discrimenal pit: 0, absent; 1, present, but weak; 2, present.</p>
        <p>34 Metapleural smooth area: 0, absent (Fig. <xref ref-type="fig" rid="F12">12C</xref>); 1, narrow, cover 0.1 times of metapleuron or less (Fig. <xref ref-type="fig" rid="F12">12D</xref>); 2, large, cover 0.5 times of metapleuron or more (Fig. <xref ref-type="fig" rid="F12">12E</xref>).</p>
        <p>35 Metapleural carina (carina connecting dorsal margin of metapleural smooth area and antero-dorsal margin of propodeum): 0, absent (Fig. <xref ref-type="fig" rid="F12">12E</xref>); 1, present (sometimes weak or incomplete) (Fig. <xref ref-type="fig" rid="F13">13A</xref>).</p>
        <fig id="F13">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure13</object-id>
          <object-id content-type="arpha">1DEE8B97-0A66-5101-91C1-4DC02B5B222B</object-id>
          <label>Figure 13.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold> lateral part of metapleuron; <bold>B</bold>, <bold>D</bold> dorsal part of propodeum; <bold>E</bold> longer hind tibial spur and hind basitarsus; <bold>F</bold> fore tarsal clows with black tooth. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic>, arrow indicate metapleural carina; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="elongatus">elongatus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="occidentalis">occidentalis</tp:taxon-name-part></tp:taxon-name></italic>; <bold>E</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">C.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="aculeator">aculeator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>F</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="japonicus">japonicus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g013.jpg" id="oo_1676538.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676538</uri>
          </graphic>
        </fig>
        <p>36 Smooth area on dorsal part of propodeum: 0, absent (dorsal part of propodeum areolate) (Fig. <xref ref-type="fig" rid="F13">13B</xref>); 1, narrow, cover 0.2 times of dorsal part of propodeum or less (Fig. <xref ref-type="fig" rid="F13">13C</xref>); 2, large, cover 0.5 times of dorsal part of propodeum or more (Fig. <xref ref-type="fig" rid="F13">13D</xref>).</p>
        <p>37 Dorsal propodeal carina (longitudinal median carina on smooth area): 0, absent; 1, present (Fig. <xref ref-type="fig" rid="F13">13D</xref>).</p>
        <p>38 Ratio length of smooth area on dorsal part of propodeum to width: 0, smooth area absent or very narrow; 1, 0.8≦; 2, ≦1.0.</p>
        <p>
          <bold>Leg</bold>
        </p>
        <p>39 Maximum length of hind tibial spur compared to length of hind basitarsus: 0, short (less than 0.4 times); 1, normal (0.4–0.75 times as long); 2, long (over 0.75 times) (in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> Kieffer, 1907, Fig. <xref ref-type="fig" rid="F13">13E</xref>).</p>
        <p>40 Black tooth base of tarsal claws: 0, absent; 1, present (in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic>, Fig. <xref ref-type="fig" rid="F13">13F</xref>)</p>
        <p><bold>Venation</bold> (Fig. <xref ref-type="fig" rid="F4">4</xref>)</p>
        <p>41 Vein r-rs: 0, absent (in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>, Fig. <xref ref-type="fig" rid="F14">14A</xref>); 1, very short (Fig. <xref ref-type="fig" rid="F14">14B</xref>); 2, relatively long (Figs <xref ref-type="fig" rid="F4">4</xref>, <xref ref-type="fig" rid="F14">14C</xref>).</p>
        <fig id="F14">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure14</object-id>
          <object-id content-type="arpha">17973D76-5A84-5ED7-B05B-84D076C08BC5</object-id>
          <label>Figure 14.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold>–<bold>C</bold> venation around stigma; <bold>D</bold>–<bold>F</bold> antero-ventral part of metasoma. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="nudipleuralis">nudipleuralis</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="arcuator">arcuator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="afissae">afissae</tp:taxon-name-part></tp:taxon-name></italic>; <bold>E</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">B.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="parvulus">parvulus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>F</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="viator">viator</tp:taxon-name-part></tp:taxon-name></italic>.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g014.jpg" id="oo_1676539.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676539</uri>
          </graphic>
        </fig>
        <p>42 Ratio of length (depth) of stigma to width: 0, 0.7&lt; ; 1, ≦0.7 (stigma wide).</p>
        <p>43 Vein R1: 0, reaching apical margin of RS; 1, reaching beyond RS (Fig. <xref ref-type="fig" rid="F14">14C</xref>).</p>
        <p>44 First and second discal cell: 0, confluent (1m-cu absent); 1, separate (1m-cu present, Fig. <xref ref-type="fig" rid="F4">4</xref>).</p>
        <p><bold>Metasoma</bold> (Figs <xref ref-type="fig" rid="F5">5</xref>, <xref ref-type="fig" rid="F6">6</xref>)</p>
        <p>45 Longitudinal carina on antero-ventral part of petiole (aps in Fig. <xref ref-type="fig" rid="F5">5A, B</xref>): 0, absent (antero-ventral part of stalk smooth in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic>, areolate in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>) (Fig. <xref ref-type="fig" rid="F14">14D</xref>); 1, present (Fig. <xref ref-type="fig" rid="F14">14E, F</xref>).</p>
        <p>46 Petiole: 0, stalk formed; 1, segmented (in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Heloridae">Heloridae</tp:taxon-name-part></tp:taxon-name>)</p>
        <p>In <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, petiole is formed by anterior part of synsternite and isn’t segmented. In this paper, we distinguished between these character states. We defined the petiole derives from synsternite like <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> as “petiole”, and one from the segment confused tergite 1 and sternite 1 like <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Heloridae">Heloridae</tp:taxon-name-part></tp:taxon-name> as “segmented petiole”.</p>
        <p>47 Petiole (Fig. <xref ref-type="fig" rid="F5">5</xref>): 0, absent (in outgroup); 1, present.</p>
        <p>48 Petiole visibly: 0, hidden by syntergite (Fig. <xref ref-type="fig" rid="F15">15B</xref>); 1, visible (Fig. <xref ref-type="fig" rid="F15">15A, C</xref>).</p>
        <fig id="F15">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure15</object-id>
          <object-id content-type="arpha">FCC8E467-04F8-5009-A998-28744D404777</object-id>
          <label>Figure 15.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold>–<bold>C</bold> antero-lateral part of metasoma, arrows indicate antero-ventral margin of stalk; <bold>D</bold>, <bold>E</bold> dorsal part of stalk and antero-dorsal part of syntergite; <bold>F</bold> lateral part of ovipositor sheath. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="afissae">afissae</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="parvulus">parvulus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="viator">viator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="ciliatus">ciliatus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>E</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="basalis">basalis</tp:taxon-name-part></tp:taxon-name></italic>; <bold>F</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="scymni">scymni</tp:taxon-name-part></tp:taxon-name></italic>.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g015.jpg" id="oo_1676540.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676540</uri>
          </graphic>
        </fig>
        <p>49 Ratio of length of petiole to width: 0, stalk hidden by syntergite; 1, short (L≦W); 2, long (L&gt;W).</p>
        <p>50 Antero-ventral margin of petiole: 0, weak, fused with anterior part (Fig. <xref ref-type="fig" rid="F15">15A</xref>); 1, developed, not fused with anterior part (Fig. <xref ref-type="fig" rid="F15">15B, C</xref>).</p>
        <p>51 Setae on ventrolateral part of syntergite: 0, absent; 1, present.</p>
        <p>52 Antero-dorsal margin of syntergite: 0, not carinate (Fig. <xref ref-type="fig" rid="F15">15D</xref>); 1, distinct carinate (Fig. <xref ref-type="fig" rid="F15">15E</xref>).</p>
        <p>53 Multiple grooves on antero-dorsal part of syntergite: 0, absent; 1, present, but very short (almost foveae) (Fig. <xref ref-type="fig" rid="F15">15E</xref>); 2, present (Fig. <xref ref-type="fig" rid="F5">5C</xref>).</p>
        <p>54 Ovipositor sheath (3rd valvula) visible and hardened in female: 0, less hardened (in outgroup); 1, hardened, clearly visible.</p>
        <p>The 3rd valvula of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> shows specific characteristics (<xref ref-type="bibr" rid="B46">Masner 1993</xref>). We called this character “ovipositor sheath” following previous studies. In <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, ovipositor sheath is rigid, sclerotized, large, and covers ovipositor totally. We coded these characteristics as “hardened” in Char. 54. The characters of ovipositor sheath below (Char. 55–62) were coded only in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>. The states in outgroup were coded as “–”.</p>
        <p>55 Length of ovipositor sheath compared to hind tibia: 0, short (0.4&lt;); 1, normal (0.4–0.8); 2, long (&lt;0.8).</p>
        <p>56 Ratio of length of ovipositor sheath to width: 0, short (ovipositor sheath wide), 5.0&lt;; 1, normal, 5.0–10.0; 2, long (ovipositor sheath narrow), &lt;10.0.</p>
        <p>57 Shape of ovipositor sheath in lateral view: 0, straight (Fig. <xref ref-type="fig" rid="F15">15F</xref>); 1; curved apically (Fig. <xref ref-type="fig" rid="F16">16A, B</xref>); 2, weakly and evenly curved (Fig. <xref ref-type="fig" rid="F16">16C</xref>); 3, distinctly and evenly curved (Fig. <xref ref-type="fig" rid="F16">16D</xref>).</p>
        <fig id="F16">
          <object-id content-type="doi">10.3897/asp.84.e175149.figure16</object-id>
          <object-id content-type="arpha">7EB07289-76A8-598C-987A-724281892960</object-id>
          <label>Figure 16.</label>
          <caption>
            <p>Morphological states for the matrix (Table S2). <bold>A</bold>–<bold>E</bold> lateral part of ovipositor sheath; <bold>F</bold> lateral part of gonostyle. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="elongatus">elongatus</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="leleji">leleji</tp:taxon-name-part></tp:taxon-name></italic>; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="perkinsi">perkinsi</tp:taxon-name-part></tp:taxon-name></italic>; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="chikoi">chikoi</tp:taxon-name-part></tp:taxon-name></italic>; <bold>E</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="flavipes">flavipes</tp:taxon-name-part></tp:taxon-name></italic>; <bold>F</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="ciliatus">ciliatus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
          </caption>
          <graphic xlink:href="arthropod-systematics-84-343-g016.jpg" id="oo_1676541.jpg">
            <uri content-type="original_file">https://binary.pensoft.net/fig/1676541</uri>
          </graphic>
        </fig>
        <p>58 Lateral surface of ovipositor sheath: 0, wrinkle absent; 1, wrinkled (Fig. <xref ref-type="fig" rid="F16">16A</xref>).</p>
        <p>59 Setae on ovipositor sheath: 0, absent; 1, present (usually sparse).</p>
        <p>60 Distribution of setae on ovipositor sheath: 0, setae absent; 1, present in dorsal and ventral (absent in apex); 2, present in dorsal, ventral, and apex; 3, present randomly.</p>
        <p>61 Length of setae on ovipositor sheath: 0, setae absent; 1, setae on dorsal part almost same length of ones on ventral part; 2, setae on ventral part longer than ones on dorsal part.</p>
        <p>62 Shape of apex of ovipositor sheath: 0, round (Fig. <xref ref-type="fig" rid="F16">16D</xref>); 1, tapered to the apex, but not pointed (Fig. <xref ref-type="fig" rid="F16">16E</xref>); 2, pointed (Fig. <xref ref-type="fig" rid="F16">16B</xref>).</p>
        <p>63 Shape of gonostyle: 0, wide and blunt; 1, narrow and sharp (in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic>, Fig. <xref ref-type="fig" rid="F16">16F</xref>).</p>
        <p>64 Ratio of length of second valvifer to width: 0, long, &lt;3.0 (Fig. <xref ref-type="fig" rid="F17">17A, B</xref>); 1, short, 3.0≦ (Figs <xref ref-type="fig" rid="F6">6</xref>, <xref ref-type="fig" rid="F17">17</xref>C, D).</p>
        <p><bold>Biology</bold> (for <abbrev xlink:title="ancestral state reconstructions">ASR</abbrev>)</p>
        <p>1 Host taxa: 0, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Coleoptera">Coleoptera</tp:taxon-name-part></tp:taxon-name>; 1, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Diptera">Diptera</tp:taxon-name-part></tp:taxon-name>; 2, others.</p>
        <p>The states of this character were based on the previous records. The reference are as follows: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="afissae">afissae</tp:taxon-name-part></tp:taxon-name></italic> (Watanabe, 1954): <xref ref-type="bibr" rid="B2">Abe (2023)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">N.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="scymni">scymni</tp:taxon-name-part></tp:taxon-name></italic> (Ashmead, 1904): <xref ref-type="bibr" rid="B4">Abe and Seki (2021)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">N.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="mirabilis">mirabilis</tp:taxon-name-part></tp:taxon-name></italic> Brues, 1940: <xref ref-type="bibr" rid="B55">Poorani (2023)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="aculeator">aculeator</tp:taxon-name-part></tp:taxon-name></italic> (Haliday, 1839) and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">C.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="flavipes">flavipes</tp:taxon-name-part></tp:taxon-name></italic> (Provancher, 1881): <xref ref-type="bibr" rid="B45">Masner (1968)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="arcuator">arcuator</tp:taxon-name-part></tp:taxon-name></italic> (Stelfox, 1960): Sueyoshi and Abe, personal observation; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> (Ashmead, 1893): <xref ref-type="bibr" rid="B1">Abe (2022)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="parvulus">parvulus</tp:taxon-name-part></tp:taxon-name></italic> (Nees, 1834): <xref ref-type="bibr" rid="B15">Choi et al. (2012)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic> (Linnaeus, 1758), <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="niger">niger</tp:taxon-name-part></tp:taxon-name></italic> Panzer, 1873, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="nebriae">nebriae</tp:taxon-name-part></tp:taxon-name></italic> (Watanabe, 1954), <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="elongatus">elongatus</tp:taxon-name-part></tp:taxon-name></italic> (Haliday, 1839), <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="calcar">calcar</tp:taxon-name-part></tp:taxon-name></italic> (Haliday, 1839), and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="viator">viator</tp:taxon-name-part></tp:taxon-name></italic> (Haliday, 1839): <xref ref-type="bibr" rid="B63">Townes and Townes (1981)</xref>; <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name>: <xref ref-type="bibr" rid="B62">Timokhov et al. (2020)</xref>; <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Heloridae">Heloridae</tp:taxon-name-part></tp:taxon-name>: <xref ref-type="bibr" rid="B69">Zhang et al. (2020)</xref>.</p>
        <p>2 Habitat of host: 0, open land; 1, forest; 2, soil.</p>
        <p>3 Parasitism; 0, solitary; 1, gregarious.</p>
        <p>The states of this character were based on the previous records. The reference are as follows: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="afissae">afissae</tp:taxon-name-part></tp:taxon-name></italic>: <xref ref-type="bibr" rid="B2">Abe (2023)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">N.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="scymni">scymni</tp:taxon-name-part></tp:taxon-name></italic>: <xref ref-type="bibr" rid="B4">Abe and Seki (2021)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">N.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="mirabilis">mirabilis</tp:taxon-name-part></tp:taxon-name></italic>: <xref ref-type="bibr" rid="B55">Poorani (2023)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="aculeator">aculeator</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="arcuator">arcuator</tp:taxon-name-part></tp:taxon-name></italic>: Sueyoshi and Abe, personal observation; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic>: Abe, personal comment; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="parvulus">parvulus</tp:taxon-name-part></tp:taxon-name></italic>: <xref ref-type="bibr" rid="B15">Choi et al. (2012)</xref>; <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="niger">niger</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="nebriae">nebriae</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="elongatus">elongatus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="viator">viator</tp:taxon-name-part></tp:taxon-name></italic>: <xref ref-type="bibr" rid="B63">Townes and Townes (1981)</xref>.</p>
      </sec>
      <sec sec-type="3.2. Phylogeny" id="sec10">
        <title>3.2. Phylogeny</title>
        <sec sec-type="3.2.1. Phylogenetic implication based on molecular data" id="sec11">
          <title>3.2.1. Phylogenetic implication based on molecular data</title>
          <p>The aligned sequences consisted of 3,035 sites, with approximately 17% of the data missing in just <abbrev xlink:title="Maximum likelihood">ML</abbrev>. The consensus tree is shown in Fig. <xref ref-type="fig" rid="F18">18</xref>, with the <abbrev xlink:title="SH-aLRT value">SH</abbrev>-aLRT value (<abbrev xlink:title="SH-aLRT value">SH</abbrev>) and Ultrafast bootstrap value (<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>). Most nodes between genera or higher taxa were strongly (95% ≦ <abbrev xlink:title="SH-aLRT value">SH</abbrev> and <abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>) or well (80% ≦ <abbrev xlink:title="SH-aLRT value">SH</abbrev> and <abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>) supported. The family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> is monophyletic (<abbrev xlink:title="SH-aLRT value">SH</abbrev> and <abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev> = 100) and comprises three clades, (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>), clade A, and (clade B + <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name>) (Fig. <xref ref-type="fig" rid="F18">18</xref>). The tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name>, which included only <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic>, was monophyletic. It belonged to the clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>) and this clade was sister to other <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name>. The tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> was polyphyletic. The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> comprised a clade with <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name>, and the rest of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> were paraphyletic. The tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> was retrieved as monophyletic, with a low support value (<abbrev xlink:title="SH-aLRT value">SH</abbrev>/<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev> = 64.2/60). Most genera were monophyletic, with strong or well support values, except for three nodes. The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic> Townes, 1981 were monophyletic, and weakly supported (<abbrev xlink:title="SH-aLRT value">SH</abbrev>/<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev> = 79.4/77). The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic> was sister to the clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic> (Haliday, 1839) + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic> Lin, 1988) with a low support value (<abbrev xlink:title="SH-aLRT value">SH</abbrev>/<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev> = 89.6/67). The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic> Pschorn-Walcher, 1958 was not clearly supported (<abbrev xlink:title="SH-aLRT value">SH</abbrev>/<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev> = 20.8/61).</p>
          <fig id="F17">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure17</object-id>
            <object-id content-type="arpha">956BBCCA-71C9-5F36-8FBC-F9E59B71966E</object-id>
            <label>Figure 17.</label>
            <caption>
              <p>Morphological states for the matrix (Table S2), female terminalia. <bold>A</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="areolator">areolator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>B</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="flavipes">flavipes</tp:taxon-name-part></tp:taxon-name></italic>; <bold>C</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>; <bold>D</bold><italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="niger">niger</tp:taxon-name-part></tp:taxon-name></italic>.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g017.jpg" id="oo_1676542.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676542</uri>
            </graphic>
          </fig>
          <fig id="F18">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure18</object-id>
            <object-id content-type="arpha">EB4CF487-284C-54EA-BC71-030601E63F57</object-id>
            <label>Figure 18.</label>
            <caption>
              <p>The maximum likelihood tree based on four gene regions. The UltraBoot strap value and <abbrev xlink:title="SH-aLRT value">SH</abbrev> values are shown in each node (<abbrev xlink:title="SH-aLRT value">SH</abbrev>/<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>). The clade “A” comprises <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> and the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>; clade “B” comprises <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="striatus">striatus</tp:taxon-name-part></tp:taxon-name></italic>, the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g018.jpg" id="oo_1676543.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676543</uri>
            </graphic>
          </fig>
          <p>In <abbrev xlink:title="Bayesian inference">BI</abbrev>, the tree is shown in Figure <xref ref-type="fig" rid="F19">19</xref> with the posterior probability (<abbrev xlink:title="posterior probability">PP</abbrev>). Most nodes were strongly supported (0.9 ≦ <abbrev xlink:title="posterior probability">PP</abbrev>), but some were not. The node between clade B and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> was weakly supported (<abbrev xlink:title="posterior probability">PP</abbrev> = 0.7033). The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported with good value (<abbrev xlink:title="posterior probability">PP</abbrev> = 0.803). The topology was almost the same as that of <abbrev xlink:title="Maximum likelihood">ML</abbrev>. The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic> was not clearly supported (<abbrev xlink:title="posterior probability">PP</abbrev> = 0.5864)</p>
          <fig id="F19">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure19</object-id>
            <object-id content-type="arpha">0AA6BCD2-5CAE-5697-88FF-D99E84B00E82</object-id>
            <label>Figure 19.</label>
            <caption>
              <p>The Bayesian inference tree based on four gene regions. The posterior probability is shown in each node. The clade “A” comprises <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> and the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>; clade “B” comprises <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="striatus">striatus</tp:taxon-name-part></tp:taxon-name></italic>, the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g019.jpg" id="oo_1676544.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676544</uri>
            </graphic>
          </fig>
        </sec>
        <sec sec-type="3.2.2. Phylogenetic implication based on morphological and biological characters" id="sec12">
          <title>3.2.2. Phylogenetic implication based on morphological and biological characters</title>
          <p>Twelve trees were retained when equal weight was applied. The most parsimonious tree with GC values and the strict consensus tree with supporting characters (length = 249, Ci = 0.37, and Ri = 0.74) are shown in Figs <xref ref-type="fig" rid="F20">20</xref>, <xref ref-type="fig" rid="F21">21</xref>, respectively. The nodes between families were strongly supported (90 ≦ GC). The family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> was monophyletic and comprised three clades (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>), <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name>, and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>. The node between <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> and the rest of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> was supported with low GC values (GC = 57), and the monophyly of the clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>) was not supported (GC = 49). In the clade of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>, the clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>) was monophyletic with moderately support value (GC = 82). Moreover, the node between <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported with low GC value (GC = 55). The nodes between other genera were not clearly supported (GC &lt; 50). The tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> was paraphyletic. The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part></tp:taxon-name></italic> (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Pr.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>) and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> Townes, 1981 were not supported.</p>
          <fig id="F20">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure20</object-id>
            <object-id content-type="arpha">6B302DC3-59D8-5EB6-9C90-95B1B7148A57</object-id>
            <label>Figure 20.</label>
            <caption>
              <p>The most parsimonious tree under equal weight. The GC values are shown in each node.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g020.jpg" id="oo_1676545.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676545</uri>
            </graphic>
          </fig>
          <fig id="F21">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure21</object-id>
            <object-id content-type="arpha">1D60E06E-188E-579D-8E1D-4D269C4E35A6</object-id>
            <label>Figure 21.</label>
            <caption>
              <p>The strict consensus tree under equal weight. The distribution of characters (upper number) and state (lower number) optimized in the Supplementary Material were shown. Solid hashmarks indicate unique synapomorphy (unique state changes) and open hashmarks are homoplastic states.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g021.jpg" id="oo_1676546.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676546</uri>
            </graphic>
          </fig>
          <p>When the implied weighting was applied, one tree was retained. The most parsimonious tree with GC values and the strict consensus tree with supporting characters (length = 237, Ci = 0.39, and Ri = 0.76) were shown in Figs <xref ref-type="fig" rid="F22">22</xref>, <xref ref-type="fig" rid="F23">23</xref> respectively. According to the strict consensus tree, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> comprised two clades, (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>) and (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> + <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name>), consistent with the results under equal weight. The tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> was paraphyletic. The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> was not supported. The GC values in some nodes were higher than equal weight, but this did not affect the results.</p>
          <fig id="F22">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure22</object-id>
            <object-id content-type="arpha">4BAD7242-4DA0-5C08-A7F3-884857AF39B0</object-id>
            <label>Figure 22.</label>
            <caption>
              <p>The most parsimonious tree under implied weight. The GC values are shown in each node.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g022.jpg" id="oo_1676547.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676547</uri>
            </graphic>
          </fig>
          <fig id="F23">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure23</object-id>
            <object-id content-type="arpha">A415C4FC-F849-57A0-B75C-22F5D9F05A51</object-id>
            <label>Figure 23.</label>
            <caption>
              <p>The strict consensus tree under implied weight. The distribution of characters (upper number) and state (lower number) optimized in the Supplementary Material were shown. Solid hashmarks indicate synapomorphy (unique state changes) and open hashmarks are homoplastic states.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g023.jpg" id="oo_1676548.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676548</uri>
            </graphic>
          </fig>
        </sec>
        <sec sec-type="3.2.3. Phylogenetic implication based on total evidence" id="sec13">
          <title>3.2.3. Phylogenetic implication based on total evidence</title>
          <p>The aligned sequence consisted of 3,100 total sites, with approximately 29% missing in just <abbrev xlink:title="Maximum likelihood">ML</abbrev>. The consensus tree was shown in Fig. <xref ref-type="fig" rid="F24">24</xref>. Most nodes between genera or higher taxa were well to strongly supported (80 ≦ <abbrev xlink:title="SH-aLRT value">SH</abbrev> and <abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>). The family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> was monophyletic and comprising two clades, (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>) and (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> + <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name>). All genera, except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic>, were monophyletic, whereas <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> was paraphyletic.</p>
          <fig id="F24">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure24</object-id>
            <object-id content-type="arpha">9119F0F4-7D4A-5DD2-A69C-D0D70DD713B8</object-id>
            <label>Figure 24.</label>
            <caption>
              <p>The maximum likelihood tree based on total evidence. The Ultrafast bootstrap value and <abbrev xlink:title="SH-aLRT value">SH</abbrev> values are shown in each node (<abbrev xlink:title="SH-aLRT value">SH</abbrev>/<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>). Node 1 shows the clade comprising <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> belonging to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>. Node 2 shows the clade comprising the rest of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g024.jpg" id="oo_1676549.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676549</uri>
            </graphic>
          </fig>
          <p>In <abbrev xlink:title="Bayesian inference">BI</abbrev>, the tree was shown in Fig. <xref ref-type="fig" rid="F25">25</xref>. Most nodes were well to strongly supported (0.8 ≦ <abbrev xlink:title="posterior probability">PP</abbrev>). The node between the clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>) and the clade comprising the five genera of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> was weakly supported (<abbrev xlink:title="posterior probability">PP</abbrev> = 0.7172). The topology was similar in <abbrev xlink:title="Maximum likelihood">ML</abbrev>, except for the clade comprising <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
          <fig id="F25">
            <object-id content-type="doi">10.3897/asp.84.e175149.figure25</object-id>
            <object-id content-type="arpha">B008E789-DD01-55BB-99B6-F3635A56B8AE</object-id>
            <label>Figure 25.</label>
            <caption>
              <p>The Bayesian inference tree based on total evidence. The posterior probability is shown in each node. Node 1 shows the clade comprising <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> belonging to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>. Node 2 shows the clade comprising the rest of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>.</p>
            </caption>
            <graphic xlink:href="arthropod-systematics-84-343-g025.jpg" id="oo_1676550.jpg">
              <uri content-type="original_file">https://binary.pensoft.net/fig/1676550</uri>
            </graphic>
          </fig>
        </sec>
      </sec>
      <sec sec-type="3.3. Relationships of taxa" id="sec14">
        <title>3.3. Relationships of taxa</title>
        <sec sec-type="3.3.1. Proctotrupidae" id="sec15">
          <title>3.3.1. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name></title>
          <p>The family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> was sister to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name> in all analyses, assuming rooting on <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Heloridae">Heloridae</tp:taxon-name-part></tp:taxon-name>. Three major clades were supported by morphological and total evidence: (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>), <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> (Figs <xref ref-type="fig" rid="F24">24</xref>, <xref ref-type="fig" rid="F25">25</xref>). A similar topology was obtained from the molecular data, however, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> became polyphyletic (genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>, clade A, and clade B in Figs <xref ref-type="fig" rid="F18">18</xref>, <xref ref-type="fig" rid="F19">19</xref>).</p>
        </sec>
        <sec sec-type="3.3.2. Disogmini + Nothoserphus" id="sec16">
          <title>3.3.2. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic></title>
          <p>The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> belongs to the tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>. However, in our analysis, it was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> of the tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name>. The monophyletic clade (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>) was placed outside the clade comprising the other two tribes, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> (Figs <xref ref-type="fig" rid="F24">24</xref>, <xref ref-type="fig" rid="F25">25</xref>).</p>
        </sec>
        <sec sec-type="3.3.3. Cryptoserphini" id="sec17">
          <title>3.3.3. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name></title>
          <p>The tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> was considered a paraphyletic group based on molecular data, but other analyses supported its monophyly. Based on the molecular data, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>, comprises two clades (clades A and B in Figs <xref ref-type="fig" rid="F18">18</xref>, <xref ref-type="fig" rid="F19">19</xref>). The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part></tp:taxon-name></italic> (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic>) was sister to the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> in the monophyletic clade (clade A in Figs <xref ref-type="fig" rid="F18">18</xref>, <xref ref-type="fig" rid="F19">19</xref>). The clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>) was placed outside the clade (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> + the rest of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic>) (Clade B, Figs <xref ref-type="fig" rid="F18">18</xref>, <xref ref-type="fig" rid="F19">19</xref>). The genera of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> were divided into two clades: (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic>) and (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">T.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Ma.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="striatus">striatus</tp:taxon-name-part></tp:taxon-name></italic>).</p>
          <p>In other analyses, the topology of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> was variable. The topology based only on the morphology differed between the weightings. Under equal weighting, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> comprised of two clades: (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic>), and others (Fig. <xref ref-type="fig" rid="F21">21</xref>). Under the implied weighting, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> consisted of two clades different from equal weight: (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic>), and others (Fig. <xref ref-type="fig" rid="F23">23</xref>).</p>
          <p>Based on the total evidence, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> was divided into two clades (Figs <xref ref-type="fig" rid="F24">24</xref>, <xref ref-type="fig" rid="F25">25</xref>). The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part></tp:taxon-name></italic> in the monophyletic clade, similar to clade A in the tree obtained from molecular analysis. The clade, (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic>) was sister to the clade comprising the other <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>. The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic> in the monophyletic clade. This clade was sister to the clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>). The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> was found to be paraphyletic in <abbrev xlink:title="Maximum likelihood">ML</abbrev> analysis (Fig. <xref ref-type="fig" rid="F24">24</xref>). The species <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">T.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic> was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic> and this clade was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">T.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="perkinsi">perkinsi</tp:taxon-name-part></tp:taxon-name></italic>. The clade comprising <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic> was sister to the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic>. The topologies of these genera were not specified in the <abbrev xlink:title="Bayesian inference">BI</abbrev> analysis (Fig. <xref ref-type="fig" rid="F25">25</xref>).</p>
        </sec>
        <sec sec-type="3.3.4. Proctotrupini" id="sec18">
          <title>3.3.4. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name></title>
          <p>The relationships between genera of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> was variable depending on the analysis. Based on only molecular data (Figs <xref ref-type="fig" rid="F18">18</xref>, <xref ref-type="fig" rid="F19">19</xref>), <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> comprises two clades. The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic> was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic> in a monophyletic clade. The clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic>) was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Pr.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>. This clade was sister to other <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name>: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic>. The clade (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic>) was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic> in <abbrev xlink:title="Maximum likelihood">ML</abbrev> analysis, however, the node between <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic> was weakly supported (<abbrev xlink:title="SH-aLRT value">SH</abbrev>/<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev> = 19/62, Fig. <xref ref-type="fig" rid="F18">18</xref>). The topology of these genera was not specified in <abbrev xlink:title="Bayesian inference">BI</abbrev> (Fig. <xref ref-type="fig" rid="F19">19</xref>).</p>
          <p>Based only on morphological characters (Figs <xref ref-type="fig" rid="F21">21</xref>, <xref ref-type="fig" rid="F23">23</xref>), <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> comprises two clades under both equal and implied weights. One comprised the monophyletic clade of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> and three species of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic> was paraphyletic. The other clade comprised the monophyletic clade of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Pr.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic> (Fig. <xref ref-type="fig" rid="F21">21</xref>). Under equal weight, the topology of these clades was not specified (Fig. <xref ref-type="fig" rid="F21">21</xref>).</p>
          <p>Based on the total evidence (Figs <xref ref-type="fig" rid="F24">24</xref>, <xref ref-type="fig" rid="F25">25</xref>), <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> comprises two clades, both <abbrev xlink:title="Maximum likelihood">ML</abbrev> and <abbrev xlink:title="Bayesian inference">BI</abbrev>. The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic> was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic> in a monophyletic clade. The clade was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Pr.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>. In the other clade of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic> was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> in a monophyletic clade. This was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
        </sec>
        <sec sec-type="3.3.5. Character mapping for biological traits" id="sec19">
          <title>3.3.5. Character mapping for biological traits</title>
          <p>We mapped three biological traits to <abbrev xlink:title="Maximum likelihood">ML</abbrev> tree through ancestral state reconstruction (Figs S5–S7; Table S6). Although some of them were coded unknown, it suggests that solitary parasitism to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Coleoptera">Coleoptera</tp:taxon-name-part></tp:taxon-name> is the ancestral trait of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>. Parasitism of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Diptera">Diptera</tp:taxon-name-part></tp:taxon-name> was shared only between <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic> (Fig. S5). The state of host habitat was estimated to have several substitutions, for example shift to “in forest” from “soil” in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic> (Fig. S6). In parasitism, it showed that gregarious parasitism is a synapomorphy in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> (Fig. S7).</p>
        </sec>
      </sec>
    </sec>
    <sec sec-type="4. Discussion" id="sec20">
      <title>4. Discussion</title>
      <sec sec-type="4.1. Proctotrupidae + Vanhorniidae" id="sec21">
        <title>4.1. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> + <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name></title>
        <p>The family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> was sister to the family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name> in all analyses. Based on morphological characters, this relationship was supported by one synapomorphies (46.0) and two homoplastic state (char. 3.1 and 30.2) under both weights. The synapomorphy, petiole formed by synsternite 1 and not segmented (char. 46.0), is shared between <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name>, and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Pelecinidae">Pelecinidae</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B46">Masner 1993</xref>). This characteristic may be important for understanding the evolutionary pattern in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily" reg="Proctotrupoidea">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>.</p>
        <p>It was estimated that <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name> are sister to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> by previous phylogenetic studies of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Hymenoptera">Hymenoptera</tp:taxon-name-part></tp:taxon-name> based on molecular data (e.g. <xref ref-type="bibr" rid="B28">Heraty et al. 2011</xref>; <xref ref-type="bibr" rid="B8">Blaimer et al. 2023</xref>). <xref ref-type="bibr" rid="B61">Sharkey et al. (2012)</xref> estimated same relationships based on total evidence, but they didn’t mention the morphology between these families. Our analysis showed the same relationship based on both molecular and morphology.</p>
      </sec>
      <sec sec-type="4.2. Proctotrupidae" id="sec22">
        <title>4.2. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name></title>
        <p>The monophyly of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> was supported by all analyses. That has been estimated in previous studies (e.g. <xref ref-type="bibr" rid="B28">Heraty et al. 2011</xref>; <xref ref-type="bibr" rid="B8">Blaimer et al. 2023</xref>)ants, sawflies, and bees, but taxon sampling was limited (3–6 species in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> and one species in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name>). In this study, we included 35 species belonging to 15 genera in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> and two species in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name>. Our results strongly support the monophyly of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>.</p>
        <p>Morphological analysis under both weights was supported by three synapomorphies (Figs <xref ref-type="fig" rid="F21">21</xref>, <xref ref-type="fig" rid="F23">23</xref>): horizontal groove on mesopleuron present (char. 28.1); petiole (derives from syntergite, called “stalk” in <xref ref-type="bibr" rid="B63">Townes and Townes (1981)</xref>) present (char. 47.1); ovipositor sheath visible and hardened in female (char. 54.1). The hardened ovipositor sheath (char. 54.1) is also shared with other genera and subfamilies in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, except for the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Heloriserphus">Heloriserphus</tp:taxon-name-part></tp:taxon-name></italic> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Heloriserphinae">Heloriserphinae</tp:taxon-name-part></tp:taxon-name>. (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>; <xref ref-type="bibr" rid="B27">He and Xu 2015</xref>; <xref ref-type="bibr" rid="B39">Kolyada and Mostovski 2017</xref>; <xref ref-type="bibr" rid="B22">Engel et al. 2022</xref>). In extinct taxa that kept the posterior part of metasoma, this trait was shown as well as in extant taxa (e.g. †<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Astarteserphus">Astarteserphus</tp:taxon-name-part></tp:taxon-name></italic>, †<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cresogmus">Cresogmus</tp:taxon-name-part></tp:taxon-name></italic>, and †<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Gurvanotrupes">Gurvanotrupes</tp:taxon-name-part></tp:taxon-name></italic>) (<xref ref-type="bibr" rid="B68">Zhang and Zhang 2001</xref>; <xref ref-type="bibr" rid="B22">Engel et al. 2022</xref>; <xref ref-type="bibr" rid="B56">Rasnitsyn et al. 2022</xref>). Several taxa in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Hymenoptera">Hymenoptera</tp:taxon-name-part></tp:taxon-name> have similar characteristics of ovipositor sheath to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, sometimes stout, sclerotized, or elongate (e.g. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Braconidae">Braconidae</tp:taxon-name-part></tp:taxon-name> (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Centistes">Centistes</tp:taxon-name-part></tp:taxon-name></italic>, <xref ref-type="bibr" rid="B7">van Achterberg 1985</xref>) and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Xyelidae">Xyelidae</tp:taxon-name-part></tp:taxon-name> (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Xyela">Xyela</tp:taxon-name-part></tp:taxon-name></italic>, <xref ref-type="bibr" rid="B9">Blank et al. (2013)</xref>) However, they are not shown in other families of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily" reg="Proctotrupoidea">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B46">Masner 1993</xref>; <xref ref-type="bibr" rid="B35">Kim et al. 2016</xref>; <xref ref-type="bibr" rid="B6">Abe et al. 2024</xref>). We conclude that this character is a specific character of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> among <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily" reg="Proctotrupoidea">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name> and suggest that a secondary loss occurred in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Heloriserphus">Heloriserphus</tp:taxon-name-part></tp:taxon-name></italic>. The stalked petiole is also thought to be specific character of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>. The character is shared among other subfamilies or extinct genera in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (petiole in †<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Astarteserphus">Astarteserphus</tp:taxon-name-part></tp:taxon-name></italic> following <xref ref-type="bibr" rid="B22">Engel et al. (2022)</xref>) (e.g. <xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>; <xref ref-type="bibr" rid="B68">Zhang and Zhang 2001</xref>). Based on our analysis, it was estimated that the long stalked petiole was secondarily lost in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> (Figs <xref ref-type="fig" rid="F21">21</xref>, <xref ref-type="fig" rid="F23">23</xref>; Table S2), transferring the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> (discussed below). In other families of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily" reg="Proctotrupoidea">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name> , petiole is absent in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name> (char. 47.0) and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Pelecinidae">Pelecinidae</tp:taxon-name-part></tp:taxon-name>, and the first metasomal tergite and sternite form a segmented petiole (char. 46.1) in others (<xref ref-type="bibr" rid="B46">Masner 1993</xref>; <xref ref-type="bibr" rid="B35">Kim et al. 2016</xref>; <xref ref-type="bibr" rid="B6">Abe et al. 2024</xref>). In the filed observation, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> use their whole metasoma when laying eggs (<xref ref-type="bibr" rid="B30">Huggert 1979</xref>; <xref ref-type="bibr" rid="B5">Abe and Hashizume 2022</xref>) that is not shown in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Vanhorniidae">Vanhorniidae</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B44">Marshall 2023</xref>). This implies that the two major diagnostic characters of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, the stalked petiole and ovipositor sheath, are related with the structure and mechanism of ovipositor system.</p>
        <p>The horizontal groove (Fig. <xref ref-type="fig" rid="F2">2</xref>) is shared among most genera in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, however, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Heloriserphus">Heloriserphus</tp:taxon-name-part></tp:taxon-name></italic> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Heloriserphinae">Heloriserphinae</tp:taxon-name-part></tp:taxon-name> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Apoglypha">Apoglypha</tp:taxon-name-part></tp:taxon-name></italic> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name> do not have this character (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>). In <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Platygastridae">Platygastridae</tp:taxon-name-part></tp:taxon-name>, a similar structure in the same position is known as the “transepisternal line” (listed in <abbrev xlink:title="Hymenoptera Anatomy and Ontology">HAO</abbrev>: <ext-link xlink:href="http://portal.hymao.org/projects/32/public/ontology_class/show/6872" ext-link-type="uri">http://portal.hymao.org/projects/32/public/ontology_class/show/6872</ext-link>). This character is known to connect with twomuscles of mesopleuron, pl2-3ax2 (anterior mesopleuron-third axillary sclerite of fore wing) and pl2-t2b (second mesopleuro-mesonotal) (<xref ref-type="bibr" rid="B47">Mikó et al. 2007</xref>; <xref ref-type="bibr" rid="B48">Mikó et al. 2021</xref>). The horizontal groove in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> appears to be the same character as transepisternal line. To clarify the homology and function, dissections and comparative anatomical exminations of mesopleural muscles are required.</p>
      </sec>
      <sec sec-type="4.3. Disogmini (Disogmus) + Nothoserphus" id="sec23">
        <title>4.3. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic>) + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic></title>
        <p>Morphological analysis showed that the clade (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>) was supported by one synapomorphy and one homoplastic state: clypeus strongly protruding in ventral view (char. 4.1), and inner pit of pronotal shoulder present (char. 20.1). These states are the efficient diagnostic characteristics of this clade. Although they did not support this clade, two characteristics, char. 5.1 (ventral margin of clypeus curved) and 45.0 (longitudinal carina on antero-ventral part of stalk absent) were shared only by <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (Table S2). It was estimated that these states are also efficient diagnostic characters of this clade.</p>
        <p>The clade of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> was supported by two homoplastic states in the morphological analysis (Figs <xref ref-type="fig" rid="F21">21</xref>, <xref ref-type="fig" rid="F23">23</xref>): 19.0 and 22.2. Compared to the definition of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>; <xref ref-type="bibr" rid="B41">Lin 1987</xref>), we suggest that state 19.0, length of pronotum less than 1.2 times as width in lateral, is useful as a diagnostic character of this genus. The state 51.0, ventral part of syntergite with setae, supported the clade under equal weight. This characteristic is mentioned as a diagnostic character of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Disogmus">Disogmus</tp:taxon-name-part></tp:taxon-name></italic> in <xref ref-type="bibr" rid="B63">Townes and Townes (1981)</xref>, but it was shared by <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">N.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="mirabilis">mirabilis</tp:taxon-name-part></tp:taxon-name></italic>, the type species of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>, in our observations.</p>
        <p>This clade of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported by three synapomorphies and seven homoplastic states (Figs <xref ref-type="fig" rid="F21">21</xref>, <xref ref-type="fig" rid="F23">23</xref>): 3.0, 7.0, 9.1, 10.0, 13.1, 14.1, 34.0, 37.0, 49.1, and 53.0. Comparing the definition and diagnosis of this genus to other genera (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>), two synapomorphies, foveae present between antennal foramina (char. 13.1), and vertex with fovea (char. 14.1), are additional useful characters defining <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
        <p>Although not scored as a phylogenetically valuable character, the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> has some unique traits compared to other <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>: notaulus is long (char. 26.2) except in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">N.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="boops">boops</tp:taxon-name-part></tp:taxon-name></italic> group (short or absent in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>); petiole is visible in dorsal view (char. 48.1) (invisible in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>) (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>; <xref ref-type="bibr" rid="B41">Lin 1987</xref>; the matrix shown in Table S2). This genus is known as parasitoid of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Coccinellidae">Coccinellidae</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B2">Abe 2023</xref>) and its habitat is in open land (bio. Char. 2.0) exceptionally (in the forest in other <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>; Fig. S6). Based on these results, we transferred <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> from <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name>.</p>
      </sec>
      <sec sec-type="4.4. Cryptoserphini except Nothoserphus" id="sec24">
        <title>4.4. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic></title>
        <p>The monophyly of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, excluding <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic>, was strongly supported by total evidence (Figs <xref ref-type="fig" rid="F24">24</xref>, <xref ref-type="fig" rid="F25">25</xref>) and was weakly supported based on morphology (Figs <xref ref-type="fig" rid="F20">20</xref>, <xref ref-type="fig" rid="F22">22</xref>), but was not supported based on molecular data (paraphyletic, Figs <xref ref-type="fig" rid="F18">18</xref>, <xref ref-type="fig" rid="F19">19</xref>). Two genera, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>, were placed outside of the rest of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> in all analyses except morphological analysis under equal weight. In the molecular analysis, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> was paraphyletic with strong support values. Considering these results, it is estimated that the rest of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> are paraphyletic and that two genera, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">Oxyserphus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>, branched earlier. We did not include some genera in the Southern Hemisphere (e.g. <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Apoglypha">Apoglypha</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Serphonostus">Serphonostus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Sminthoserphus">Sminthoserphus</tp:taxon-name-part></tp:taxon-name></italic>) in the analysis. However, further research is required to confirm these hypotheses.</p>
        <p>The monophyly of the remaining <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> was weakly supported except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> in all analyses.</p>
        <p>The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> was not monophyletic. In morphological analysis, we included 19 characters (4.0, 7.1, 8.1, 10.1, 15.1, 17.1, 18.0, 26.1, 28.1, 30.1, 31.2, 34.2, 35.1, 39.0, 41.2, 43.0, 48.0, 53.2, 55.1/2) that were mentioned in the definition of this genus (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>). However, they were not scored as valuable states in the analysis. The species <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">T.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic> was sister to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic> in all analyses except under equal weight and it was supported by three weak homoplastic states (char. 55.1, 56.1, 62.0) under implied weight. It is estimated that the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> is relatively close to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
        <p>The monophyly of the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported by five homoplastic states: 20.1, 22.2, 24.1, 33.1, and 35.0. We suggest that state inner pit between pronotal shoulder present (char. 20.1), and epomia connected to pronotal shoulder (char. 24.1), are useful as diagnostic characters of this genus that were not mentioned in the definition by <xref ref-type="bibr" rid="B42">Lin (1988)</xref>.</p>
        <p>The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported by one synapomorphy and three homoplastic states: mesothoracic spiracle separated from postero-lateral margin of pronotum (char 25.1); metapleural carina absent (char. 35.0); length of longer hind tibial spur over 0.75 times of hind tibia (char. 39.2). Compared with the definition of this genus, we suggest that the characteristics, mesothoracic spiracle not touching postero-lateral margin of pronotum (char. 25.1) and absence of metapleural carina (char 35.0), are efficient diagnostic characters. The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported by two homoplastic states: 21.1 and 43.1. The two genera formed a monophyletic clade under both weights. This clade was supported by one synapomorphy (char. 31.0) and two homoplastic states (char. 7.0 and 17.1). Considering these results, we conclude that the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic> is monophyletic and close to <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic>. The result of character mapping showed that these genera shared host taxon (bio. char. 1.1: host is <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Diptera">Diptera</tp:taxon-name-part></tp:taxon-name>) (Fig. S5). Based on the previous studies, only these two genera are known to parasitize to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Diptera">Diptera</tp:taxon-name-part></tp:taxon-name> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily" reg="Proctotrupoidea">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name> (<xref ref-type="bibr" rid="B46">Masner 1993</xref>; <xref ref-type="bibr" rid="B38">Kolyada and Chemyreva 2019</xref>). This implies that this is an important trait when discussing host shifts in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily" reg="Proctotrupoidea">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>.</p>
        <p>The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported by two synapomorphies and two homoplastic states: 15.0, 16.1, 18.2, and 23.1. The longitudinal groove on pronotum in lateral (char. 23.1) was a synapomorphy in our results. However, the Australian genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Apoglypha">Apoglypha</tp:taxon-name-part></tp:taxon-name></italic> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> also has this groove (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>) and was not included in our analysis. This character may be useful in distinguishing <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic>, but additional studies including those on <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Apoglypha">Apoglypha</tp:taxon-name-part></tp:taxon-name></italic> are needed to clarify the definition of this genus. Compared to the definition in other genera (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>), the state margin of occipital carina with wrinkles, (char. 16.1) is also efficient diagnostic characters of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
        <p>The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported by two homoplastic states: 24.1 and 25.1. <xref ref-type="bibr" rid="B39">Kolyada and Mostovski (2017)</xref> suggested that the absence of malar sulcus is a diagnostic character of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>, however, all species of this genus in our analysis had a malar sulcus (char. 10.1). Following the figures in <xref ref-type="bibr" rid="B39">Kolyada and Mostovski (2017)</xref>, another Oriental and Neotropical genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Trachyserphus">Trachyserphus</tp:taxon-name-part></tp:taxon-name></italic> has the states mesothoracic spiracle separatred from postero-lateral margin of pronotum (char. 25.1) same as <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>. A detailed morphological review of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> and other closely related genera is required to define the genus.</p>
      </sec>
      <sec sec-type="4.5. Proctotrupini" id="sec25">
        <title>4.5. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name></title>
        <p>The monophyly of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> was supported by two synapomorphies and three homoplastic states in the morphological analysis (Figs <xref ref-type="fig" rid="F21">21</xref>, <xref ref-type="fig" rid="F23">23</xref>): 3.2, 19.0, 25.1, 27.0, and 64.1. The biological state 3.1, gregarious parasitoid, was shared among <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Proctotrupes</tp:taxon-name-part></tp:taxon-name></italic> (Table S6). Based on <abbrev xlink:title="ancestral state reconstructions">ASR</abbrev>, it was estimated as an ancestral state in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> (Fig. S7). However, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="trifoveatus">trifoveatus</tp:taxon-name-part></tp:taxon-name></italic> (Kieffer, 1904) which was not included in our analysis was reported as a solitary parasitoid (<xref ref-type="bibr" rid="B66">Williams 1932</xref>). It is estimated that gregariousness undergoes multiple changes across phylogeny.</p>
        <p>The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic> was supported by seven homoplastic states (char. 0.0, 8.1, 32.0, 43.0, 44.0, 58.1 and 61.1) Figs <xref ref-type="fig" rid="F21">21</xref>, <xref ref-type="fig" rid="F23">23</xref>). Based on the molecular data, this genus was monophyletic, but the relationship between the two closely related genera, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic>, was not specified (Figs <xref ref-type="fig" rid="F18">18</xref>, <xref ref-type="fig" rid="F19">19</xref>). The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic> is clearly distinguished by two characters, length of face 1.1 times or less than inner distance between eyes (char. 3.0, 3.2 in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic>), and distinct ridge between antennal foramen absent (char. 12.0, 12.1 in <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic>). These characters did not support the clade as a valuable character in our analysis. A detailed examination of these genera is required to define <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic>.</p>
        <p>The genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaneroserphus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic> was paraphyletic under both weights (Figs <xref ref-type="fig" rid="F21">21</xref>, <xref ref-type="fig" rid="F23">23</xref>). This genus can be distinguished by having clear ridge between antennal foramen (char. 12.1) (<xref ref-type="bibr" rid="B16">Choi et al. 2016</xref>). In our analysis, this character is shared with <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic>. These genera can be specified only by black tarsal teeth (char. 40, discuss below). We concluded these two genera are close lineage.</p>
        <p>The monophyly of the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Exallonyx">Exallonyx</tp:taxon-name-part></tp:taxon-name></italic> was supported by one synapomorphy and five homoplastic states: 11.1, 32.0, 38.2, 40.1, 55.1 and 58.1. This genus is clearly distinguished by black teeth on the fore and middle tarsal claws (char. 40.0) (<xref ref-type="bibr" rid="B63">Towners and Townes 1981</xref>; <xref ref-type="bibr" rid="B27">He and Xu 2015</xref>). This genus has the highest species diversity in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (approximately 350 species, 50% of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>) (<xref ref-type="bibr" rid="B38">Kolyada and Chemyreva 2019</xref>). However, taxonomic revision is required to define this genus.</p>
        <p>The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Codrus">Codrus</tp:taxon-name-part></tp:taxon-name></italic> was supported by one synapomorphy and two homoplastic states: 11.1, 38.2, and 63.1.</p>
        <p>The monophyly of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic> was supported by three weak homoplastic states: 13.0, 39.0, 58.1. This genus is difficult to define and distinguish between species based on exoskeleton (<xref ref-type="bibr" rid="B63">Townes and Townes 1981</xref>). Therefore, a detailed examination of their morphologies is required.</p>
      </sec>
      <sec sec-type="4.6. Ovipositor sheath" id="sec26">
        <title>4.6. Ovipositor sheath</title>
        <p>The rigid and integument ovipositor sheath is a specific character of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (discussed above). We coded seven characters related to the ovipositor sheath (char. 55–62). According to the analysis, five characters, char. 55, 56, 57, 58, and 61, supported the species or clade under both weights. However, all these characters were coded as homoplastic states, and were not valuable in supporting phylogenetic relationships. Character 56, ratio of length of ovipositor sheath to width, is an example of multiple substitutions. The state 56.1 supported (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cr.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="flavipes">flavipes</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cr.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="longitarsis">longitarsis</tp:taxon-name-part></tp:taxon-name></italic>) as a homoplastic state under both weights. This state also supported the clade comprised <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">T.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic>, and (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>) under equal weight, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> and (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">T.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="laricis">laricis</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>) under implied weight. Another state (56.2) supported <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">Pr.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic> under both weights. This state also supported <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic> under equal weight, and the clade comprising <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Maaserphus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">Mischoserphus</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Tretoserphus">Tretoserphus</tp:taxon-name-part></tp:taxon-name></italic> under implied weight. This convergence was also observed in our analysis. The state 57.1, ovipositor sheath curved apically, supported two species belonging to different tribes, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phoxoserphus">Phoxoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="iyokpe">iyokpe</tp:taxon-name-part></tp:taxon-name></italic> in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Phaenoserphus">Phaenoserphus</tp:taxon-name-part></tp:taxon-name></italic> sp.1 in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Proctotrupini">Proctotrupini</tp:taxon-name-part></tp:taxon-name> under both weights. Although it was shown under equal weight, this state supported three another clades: <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Proctotrupes">P.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="gravidator">gravidator</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Parthenocodrus">Parthenocodrus</tp:taxon-name-part></tp:taxon-name></italic>, and (<italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> + <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic>). Based on these results, we inferred that some characteristics of the ovipositor sheath, such as its proportion, surface sculptures, and setation, were evolutionarily labile.</p>
        <p>When accessing a host, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> insert their abdomen including ovipositor sheath into the host body or habitat (<xref ref-type="bibr" rid="B30">Huggert 1979</xref>; <xref ref-type="bibr" rid="B50">Nakamura et al. 2013</xref>; <xref ref-type="bibr" rid="B5">Abe and Hashizume 2022</xref>; Enomoto and Abe, personal observation). Moreover, based on our analysis, some of the genera that attack the same host tend to have similar ovipositor sheath states (see the matrix in Tables S2, S6). For example, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Oxyserphus">O.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="clypeatus">clypeatus</tp:taxon-name-part></tp:taxon-name></italic> and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Brachyserphus">B.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="parvulus">parvulus</tp:taxon-name-part></tp:taxon-name></italic> parasitize sap beetles (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Nitidulidae">Nitidulidae</tp:taxon-name-part></tp:taxon-name>) and share the following morphological states of ovipositor sheath: normal length; curved apically; setae present in dorsal and ventral parts, ventral ones longer than dorsal ones. Another example is about <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">C.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="aculeator">aculeator</tp:taxon-name-part></tp:taxon-name></italic>, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Cryptoserphus">C.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="flavipes">flavipes</tp:taxon-name-part></tp:taxon-name></italic>, and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Mischoserphus">M.</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species" reg="arcuator">arcuator</tp:taxon-name-part></tp:taxon-name></italic>. They parasitize fungus gnats (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Mycetophilidae">Mycetophilidae</tp:taxon-name-part></tp:taxon-name>) and share the following morphological states of ovipositor sheath: clearly long; weakly and evenly curved; sparsely punctate laterally; sharp apex.</p>
        <p>The evolution of some morphological traits is related to parasitoid hosts (<xref ref-type="bibr" rid="B18">Dal Pos and Sharanowski 2024</xref>), and convergence sometimes occurs based on host biology (<xref ref-type="bibr" rid="B24">Gauld and Mound 1982</xref>). Especially in the morphological characters related to oviposition, it is estimated that they are affected by the hosts and type of substrates (e.g. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Aulacidae">Aulacidae</tp:taxon-name-part></tp:taxon-name> in <xref ref-type="bibr" rid="B64">Vilhelmsen and Turris (2011)</xref>; <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily" reg="Ceraphronoidea">Ceraphronoidea</tp:taxon-name-part></tp:taxon-name> in <xref ref-type="bibr" rid="B23">Earnst et al. (2013)</xref>; <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Cynipidae">Cynipidae</tp:taxon-name-part></tp:taxon-name> in Guiget et al. (2023); <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Ichneumonidae">Ichneumonidae</tp:taxon-name-part></tp:taxon-name> in <xref ref-type="bibr" rid="B18">Dal Pos and Sharanowski 2024</xref>; <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Orussidae">Orussidae</tp:taxon-name-part></tp:taxon-name> in <xref ref-type="bibr" rid="B65">Vilhelmsen et al. (2001)</xref>).</p>
        <p>In <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, the ovipositor sheath is implicated in the relationship between parasitic behavior and host habitat. It is possible that host-driven convergent evolution occurred among the <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> lineages.</p>
      </sec>
    </sec>
    <sec sec-type="5. Conclusion" id="sec27">
      <title>5. Conclusion</title>
      <p>The family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> is common worldwide and known for the rigid and integument ovipositor sheath. This study is the first attempt at a phylogenetic reconstruction of higher taxa in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name>, the most diverse subfamily in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>. Based on both morphological and molecular characters, we concluded that the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> belonging to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> should be transferred to the tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Disogmini">Disogmini</tp:taxon-name-part></tp:taxon-name> as the second genus of this tribe.</p>
      <p>The tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> except <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Nothoserphus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> was estimated to be polyphyletic based mainly on molecular phylogenetic analysis. Our analyses were based on the main genera of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily" reg="Proctotrupinae">Proctotrupinae</tp:taxon-name-part></tp:taxon-name> but were geographically limited mainly from the Palaearctic region. Several genera belonging to <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name> are endemic to the Southern Hemisphere, for example, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Serphonostus">Serphonostus</tp:taxon-name-part></tp:taxon-name></italic> Townes, 1981 are endemic to the Australian region (Tasmania) and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Sminthoserphus">Sminthoserphus</tp:taxon-name-part></tp:taxon-name></italic> Townes, 1981 are endemic to the Neotropical region. Moreover, the extinct genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus" reg="Palaeoteleia">Palaeoteleia</tp:taxon-name-part></tp:taxon-name></italic> is known to be from the Miocene (Florissant fossil, Colorado) (<xref ref-type="bibr" rid="B17">Cockerell 1915</xref>). A comprehensive phylogenetic reconstruction of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe" reg="Cryptoserphini">Cryptoserphini</tp:taxon-name-part></tp:taxon-name>, including geographically disparate and extinct taxa, is important for resolving the classification and discussing early evolution.</p>
      <p>Within <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, 29 extinct species in 21 genera have been recorded (<xref ref-type="bibr" rid="B22">Engel et al. 2022</xref>; <xref ref-type="bibr" rid="B56">Rasnitsyn et al. 2022</xref>). Among these taxa, 15 genera were extinct, but 10 genera were not classified into subfamilies or tribes (<xref ref-type="bibr" rid="B56">Rasnitsyn et al. 2022</xref>). Including extinct taxa, revision of morphology, and phylogenetic analysis based on total evidence are required to discuss the radiation history of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>.</p>
      <p>Additionally, we suggested new diagnostic characters based on morphological phylogenetic analysis of several genera. For some genera and tribes, diagnostic characters were not confirmed because they were not monophyletic, supported only by weak characters. Redefining each genus and tribe should be based on sufficient examinations of species and taxonomic studies.</p>
      <p>Our analysis also indicated that the developed ovipositor sheath is a defining character of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, although its characteristics are evolutionarily labile. Our morphological analysis and previous observations of oviposition showed that <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> sometimes insert their metasoma into host habitat and several taxa having with same host share with the states of ovipositor sheath. This suggests that these characteristics are correlated with host biology, especially habitat. Consequently, the ovipositor sheath, an essential trait of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, could be the key to understanding the relationship between the ovipositor system and host biology. Further research that integrates the morphological evolution and functional aspects of ovipositor sheaths related to parasite strategy could reveal this. Understanding the morphological host-parasite interactions in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family" reg="Proctotrupidae">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> will contribute to broader studies on the convergent evolution of functional morphology in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Hymenoptera">Hymenoptera</tp:taxon-name-part></tp:taxon-name>.</p>
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    <ack>
      <title>6. Acknowledgements</title>
      <p>We would like to express our cordial thanks to H. Chen, H. Nishino, K. Nishiya, K. Komeda, K. Konishi, N. Tsuji, R. Ito, R. Kawai, R. Nakamura, R. Seki, S. Kajiwara, S. Shimizu, T. Hashizume, T. Kawano, Y. Hirose, Y. Hisasue, Y. Hsu, Y. Omatsu, for providing materials, K. Uemori for providing materials obtained under permission from under the permission from Tokachi-seibu National Forest District Office and the Takakuma Experimental Forest of Kagoshima University, and CF. Lee (<named-content content-type="dwc:institutional_code" xlink:title="Taiwan Agricultural Research Institute" xlink:href="https://scientific-collections.gbif.org/institution/02b22bf1-5982-43f5-95d3-8a83e9f056d3">TARI</named-content>), J. Yamasako (<named-content content-type="dwc:institutional_code" xlink:title="National Agriculture and Food Research Organization" xlink:href="https://scientific-collections.gbif.org/institution/352e8dcc-9081-4221-a149-b56e205395b3">NARO</named-content>), K. Konishi (<abbrev content-type="institution" xlink:title="Ehime University Museum, Matsuyama, Ehime, Japan">EUM</abbrev>), K. Yamagishi (<abbrev xlink:title="Nagoya Biodiversity Center, Nagoya, Japan">NBC</abbrev>), M. Ohara (<named-content content-type="dwc:institutional_code" xlink:title="Laboratory of Systematic Entomology, The Hokkaido University Museum, Hokkaido University, Sapporo, Japan" xlink:href="https://scientific-collections.gbif.org/institution/9d781c7b-55d1-4fc5-b2ed-0cb83eca1267">SEHU</named-content>), S. Fujie (<abbrev content-type="institution" xlink:title="Osaka Museum of Natural History, Osaka, Japan">OMNH</abbrev>) for allowing me to examine the insect collections. Several specimens collected in Shei-Pa National Park were generated by the project for insect diversity of the Dasyueshan area sponsored by the Administration of Shei-Pa National Park (project serial number: SP110113). We also thank V. Kolyada for his advice on the definition of each genus and species, J. Okayasu, T. Nozaki, and Y. Sato for their help with our phylogenetic analysis, B. Boudinot, J. Awad and an anonymous reviewer for their valuable comments on our manuscript. We appreciate the Center for Advanced Instrumental and Educational Supports, Faculty of Agriculture, Kyushu University, for the use of its laboratory for DNA analysis. This Project is partly supported by the Kyushu University Foundation sponsored by Robert T. Huang Entrepreneurship Center QREC of Kyushu University, the Sasakawa Scientific Research Grant from the Japan Science Society (project number: 2023-5012), JST K2-SPRING (grant number: JPMJSP2136), and JSPS Bilateral Program (grant number: JPJSBP120249601).</p>
    </ack>
    <ref-list>
      <title>7. References</title>
      <ref id="B1">
        <mixed-citation>Abe J (2022) First record of the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Oxyserphus</tp:taxon-name-part></tp:taxon-name></italic> Masner, 1961 (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>) from Japan. Japanese Journal of Systematic Entomology 28(1): 23–25.</mixed-citation>
      </ref>
      <ref id="B2">
        <mixed-citation>Abe J (2023) Redescription of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species">afissae</tp:taxon-name-part></tp:taxon-name></italic> (Watanabe, 1954) (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>), a parasitoid wasp of lady beetle. Japanese Journal of Entomology (New series) 26(3): 179–183. <ext-link xlink:href="10.20848/kontyu.26.3_179" ext-link-type="doi">https://doi.org/10.20848/kontyu.26.3_179</ext-link></mixed-citation>
      </ref>
      <ref id="B3">
        <mixed-citation>Abe J (2024) Two new species of the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Maaserphus</tp:taxon-name-part></tp:taxon-name></italic> Lin, 1988 (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>) from Japan and Taiwan. Zootaxa 5523(4): 494–500. <ext-link xlink:href="10.11646/zootaxa.5523.4.8" ext-link-type="doi">https://doi.org/10.11646/zootaxa.5523.4.8</ext-link></mixed-citation>
      </ref>
      <ref id="B4">
        <mixed-citation>Abe J, Seki R (2021) Additional host records of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Nothoserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species">scymni</tp:taxon-name-part></tp:taxon-name></italic> (Ashmead, 1904) (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>). Japanese Journal of Systematic Entomology 27(2): 229–231.</mixed-citation>
      </ref>
      <ref id="B5">
        <mixed-citation>Abe J, Hashizume T (2022) <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>) observed on <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Daedaleopsis</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species">confragosa</tp:taxon-name-part></tp:taxon-name></italic>. Sugareoi (2): 86–88.</mixed-citation>
      </ref>
      <ref id="B6">
        <mixed-citation>Abe J, Yamagishi K, Konishi K (2024) Review of the family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Vanhorniidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>), with the description of two new species. Zootaxa 5507(3): 427–438. <ext-link xlink:href="10.11646/zootaxa.5507.3.2" ext-link-type="doi">https://doi.org/10.11646/zootaxa.5507.3.2</ext-link></mixed-citation>
      </ref>
      <ref id="B7">
        <mixed-citation>van Achterberg C (1985) The systematic position of the genera <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Ecnomios</tp:taxon-name-part></tp:taxon-name></italic> Manson and <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Pselaphanus</tp:taxon-name-part></tp:taxon-name></italic> Szépligeti (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Braconidae</tp:taxon-name-part></tp:taxon-name>). Zoologische Mededelingen 59: 341–348.</mixed-citation>
      </ref>
      <ref id="B8">
        <mixed-citation>Blaimer BB, Santos BF, Cruaud A, Gates MW, Kula RR, Mikó I, Rasplus J-Y, Smith DR, Talamas EJ, Brady SG, Buffington ML (2023) Key innovations and the diversification of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>. Nature Communications 14(1): 1212. <ext-link xlink:href="10.1038/s41467-023-36868-4" ext-link-type="doi">https://doi.org/10.1038/s41467-023-36868-4</ext-link></mixed-citation>
      </ref>
      <ref id="B9">
        <mixed-citation>Blank SM, Shinohara A, Altenhofer E (2013) The Eurasian species of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Xyela</tp:taxon-name-part></tp:taxon-name></italic> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Xyelidae</tp:taxon-name-part></tp:taxon-name>): taxonomy, host plants and distribution. Zootaxa 3629(1): 1–106. <ext-link xlink:href="10.11646/zootaxa.3629.1.1" ext-link-type="doi">https://doi.org/10.11646/zootaxa.3629.1.1</ext-link></mixed-citation>
      </ref>
      <ref id="B10">
        <mixed-citation>Buffington ML, Copeland RS, van Noort S. (2018) Revision of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Afroserphus</tp:taxon-name-part></tp:taxon-name></italic> Masner (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>) with the description of two new species. Proceedings of the Entomological Society of Washington 120(4): 687–707.</mixed-citation>
      </ref>
      <ref id="B11">
        <mixed-citation>Buhl PN (1998) New species of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name> s. l. from Europe (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>). Phegae 26(4): 141–150.</mixed-citation>
      </ref>
      <ref id="B12">
        <mixed-citation>Butcher B, Quicke D (2023) 20. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>. In: Parasitoid wasps of South East Asia. CABI, Bostson, 320–326.</mixed-citation>
      </ref>
      <ref id="B13">
        <mixed-citation>Can İl, Aydemi̇R HB (2025) New records with DNA barcodes of the family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>) from Türkiye. Zootaxa 5621(1): 131–143. <ext-link xlink:href="10.11646/zootaxa.5621.1.6" ext-link-type="doi">https://doi.org/10.11646/zootaxa.5621.1.6</ext-link></mixed-citation>
      </ref>
      <ref id="B14">
        <mixed-citation>Capella-Gutiérrez S, Silla-Martínez JM, Gabaldón T (2009) TrimAl: a tool for automated alignment trimming in large-scale phylogenetic analyses. Bioinformatics 25(15): 1972–1973. <ext-link xlink:href="10.1093/bioinformatics/btp348" ext-link-type="doi">https://doi.org/10.1093/bioinformatics/btp348</ext-link></mixed-citation>
      </ref>
      <ref id="B15">
        <mixed-citation>Choi M-B, Kolyada VA, Lee J-W (2012) Description of two new species from South Korea and Russian Far East with a key to the Palearctic species of the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> Hellén (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>). Animal Cells and Systems 16(3): 237–244. <ext-link xlink:href="10.1080/19768354.2011.644402" ext-link-type="doi">https://doi.org/10.1080/19768354.2011.644402</ext-link></mixed-citation>
      </ref>
      <ref id="B16">
        <mixed-citation>Choi M-B, Kolyada VA, Lee J-W (2016) <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Phaneroserphus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species">coreanus</tp:taxon-name-part></tp:taxon-name></italic>, a new species of proctotrupid wasps (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>) from South Korea, Japan and Russian Far East with a key to the Palearctic species of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Phaneroserphus</tp:taxon-name-part></tp:taxon-name></italic>. Journal of Asia-Pacific Entomology 19: 799–810.</mixed-citation>
      </ref>
      <ref id="B17">
        <mixed-citation>Cockerell DA (1915) Miocene Fossil Insects. Proceedings of the Academy of Natural Sciences of Philadelphia 66(3): 634–648.</mixed-citation>
      </ref>
      <ref id="B18">
        <mixed-citation>Dal Pos D, Sharanowski BJ (2024) A host driven parasitoid syndrome: Convergent evolution of multiple traits associated with woodboring hosts in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Ichneumonidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Ichneumonoidea</tp:taxon-name-part></tp:taxon-name>). Khan S (Ed.). PLOS ONE 19(9): e0311365. <ext-link xlink:href="10.1371/journal.pone.0311365" ext-link-type="doi">https://doi.org/10.1371/journal.pone.0311365</ext-link></mixed-citation>
      </ref>
      <ref id="B19">
        <mixed-citation>Dal Pos D, Mikó I, Talamas EJ, Vilhelmsen L, Sharanowski BJ (2023) A revised terminology for male genitalia in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="class">Insecta</tp:taxon-name-part></tp:taxon-name>), with a special emphasis on <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Ichneumonoidea</tp:taxon-name-part></tp:taxon-name>. PeerJ 11: e15874. <ext-link xlink:href="10.7717/peerj.15874" ext-link-type="doi">https://doi.org/10.7717/peerj.15874</ext-link></mixed-citation>
      </ref>
      <ref id="B20">
        <mixed-citation>Dowton M, Austin AD (1994) Molecular phylogeny of the insect order <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: apocritan relationships. Proceedings of the National Academy of Sciences 91(21): 9911–9915. <ext-link xlink:href="10.1073/pnas.91.21.9911" ext-link-type="doi">https://doi.org/10.1073/pnas.91.21.9911</ext-link></mixed-citation>
      </ref>
      <ref id="B21">
        <mixed-citation>Dowton M, Austin AD (2001) Simultaneous analysis of 16S, 28S, COI and morphology in the <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="suborder">Apocrita</tp:taxon-name-part></tp:taxon-name> – evolutionary transitions among parasitic wasps. Biological Journal of the Linnean Society 74(1): 87–111. <ext-link xlink:href="10.1111/j.1095-8312.2001.tb01379.x" ext-link-type="doi">https://doi.org/10.1111/j.1095-8312.2001.tb01379.x</ext-link></mixed-citation>
      </ref>
      <ref id="B22">
        <mixed-citation>Engel MS, Herhold HW, Barden P (2022) A proctotrupid wasp in Lebanese Lower Cretaceous amber (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>). Palaeoentomology 5(5). <ext-link xlink:href="10.11646/palaeoentomology.5.5.4" ext-link-type="doi">https://doi.org/10.11646/palaeoentomology.5.5.4</ext-link></mixed-citation>
      </ref>
      <ref id="B23">
        <mixed-citation>Ernst A, Miko I, Deans A (2013) Morphology and function of the ovipositor mechanism in <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Ceraphronoidea</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="suborder">Apocrita</tp:taxon-name-part></tp:taxon-name>). Journal of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name> Research 33: 25–61. <ext-link xlink:href="10.3897/jhr.33.5204" ext-link-type="doi">https://doi.org/10.3897/jhr.33.5204</ext-link></mixed-citation>
      </ref>
      <ref id="B24">
        <mixed-citation>Gauld ID, Mound LA (1982) Homoplasy and the delineation of holophyletic genera in some insect groups. Systematic Entomology 7(1): 73–86. <ext-link xlink:href="10.1111/j.1365-3113.1982.tb00127.x" ext-link-type="doi">https://doi.org/10.1111/j.1365-3113.1982.tb00127.x</ext-link></mixed-citation>
      </ref>
      <ref id="B25">
        <mixed-citation>Goloboff PA, Morales ME (2023) TNT version 1.6, with a graphical interface for MACOS and Linux, including new routines in parallel. Cladistics 39(2): 144–153. <ext-link xlink:href="10.1111/cla.12524" ext-link-type="doi">https://doi.org/10.1111/cla.12524</ext-link></mixed-citation>
      </ref>
      <ref id="B26">
        <mixed-citation>Guindon S, Dufayard J-F, Lefort V, Anisimova M, Hordijk W, Gascuel O (2010) New algorithms and methods to estimate maximum-likelihood phylogenies: assessing the performance of PhyML 3.0. Systematic Biology 59(3): 307–321. <ext-link xlink:href="10.1093/sysbio/syq010" ext-link-type="doi">https://doi.org/10.1093/sysbio/syq010</ext-link></mixed-citation>
      </ref>
      <ref id="B27">
        <mixed-citation>He J, Xu Z Fauna Sinica. Inscta. Vol. 56. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name> (I). Science Press, Beijing, 1055 pp.</mixed-citation>
      </ref>
      <ref id="B28">
        <mixed-citation>Heraty J, Ronquist F, Carpenter JM, Hawks D, Schulmeister S, Dowling AP, Murray D, Munro J, Wheeler WC, Schiff N, Sharkey M (2011) Evolution of the hymenopteran megaradiation. Molecular Phylogenetics and Evolution 60(1): 73–88. <ext-link xlink:href="10.1016/j.ympev.2011.04.003" ext-link-type="doi">https://doi.org/10.1016/j.ympev.2011.04.003</ext-link></mixed-citation>
      </ref>
      <ref id="B29">
        <mixed-citation>Hoang DT, Chernomor O, Von Haeseler A, Minh BQ, Vinh LS (2018) UFBoot2: Improving the Ultrafast Bootstrap Approximation. Molecular Biology and Evolution 35(2): 518–522. <ext-link xlink:href="10.1093/molbev/msx281" ext-link-type="doi">https://doi.org/10.1093/molbev/msx281</ext-link></mixed-citation>
      </ref>
      <ref id="B30">
        <mixed-citation>Huggert L (1979) <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Cryptoserphus</tp:taxon-name-part></tp:taxon-name></italic> and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily">Belytinae</tp:taxon-name-part></tp:taxon-name> wasps (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>) parasitizing fungus- and solid-inhabiting <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Diptera</tp:taxon-name-part></tp:taxon-name>. Natulae Entomologicae 59: 139–144.</mixed-citation>
      </ref>
      <ref id="B31">
        <mixed-citation>Izadizadeh M, Talebi A, Kolyada V, Farahani S, Kazerani F, Aneri A (2022) Review of the family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>) in Iran. Redia 105: 37–58.</mixed-citation>
      </ref>
      <ref id="B32">
        <mixed-citation>Kalyaanamoorthy S, Minh BQ, Wong TKF, Von Haeseler A, Jermiin LS (2017) ModelFinder: fast model selection for accurate phylogenetic estimates. Nature Methods 14(6): 587–589. <ext-link xlink:href="10.1038/nmeth.4285" ext-link-type="doi">https://doi.org/10.1038/nmeth.4285</ext-link></mixed-citation>
      </ref>
      <ref id="B33">
        <mixed-citation>Katoh K, Kuma K, Toh H, Miyata T (2005) MAFFT version 5: improvement in accuracy of multiple sequence alignment. Nucleic Acids Research 33 (2): 511–518.</mixed-citation>
      </ref>
      <ref id="B34">
        <mixed-citation>Katoh K, Rozewicki J, Yamada KD (2019) MAFFT online service: multiple sequence alignment, interactive sequence choice and visualization. Briefings in Bioinformatics 20(4): 1160–1166. <ext-link xlink:href="10.1093/bib/bbx108" ext-link-type="doi">https://doi.org/10.1093/bib/bbx108</ext-link></mixed-citation>
      </ref>
      <ref id="B35">
        <mixed-citation>Kim C-J, Lelej AS, Park B, Lee J-W (2016) Review of the family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctorenyxidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>), with description of new species from South Korea. Zootaxa 4103(1): 94–100. <ext-link xlink:href="10.11646/zootaxa.4103.1.12" ext-link-type="doi">https://doi.org/10.11646/zootaxa.4103.1.12</ext-link></mixed-citation>
      </ref>
      <ref id="B36">
        <mixed-citation>Klopfstein S, Vilhelmsen L, Heraty JM, Sharkey M, Ronquist F (2013) The hymenopteran tree of life: evidence from protein-coding genes and objectively aligned ribosomal data. Janke A (Ed.). PLoS ONE 8(8): e69344. <ext-link xlink:href="10.1371/journal.pone.0069344" ext-link-type="doi">https://doi.org/10.1371/journal.pone.0069344</ext-link></mixed-citation>
      </ref>
      <ref id="B37">
        <mixed-citation>Kolyada V (2016) New records of species of the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Brachyserphus</tp:taxon-name-part></tp:taxon-name></italic> Hellén, 1941 (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>) in the Palaearctic Region, with description of a new species. Euroasian Entomological Journal 1: 74–77.</mixed-citation>
      </ref>
      <ref id="B38">
        <mixed-citation>Kolyada V, Chemyreva V (2019) 22. Family <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>. In: Belokobylskij SA, Samartsev KG (Eds), Annotated catalogue of the <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name> of Russia. Volume II. <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="suborder">Apocrita</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="above-genus">Parasitica</tp:taxon-name-part></tp:taxon-name>. Zoological Institute RAS, St Petersburg, 30–34.</mixed-citation>
      </ref>
      <ref id="B39">
        <mixed-citation>Kolyada V, Mostovski MB (2017) Revision of the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Hormoserphus</tp:taxon-name-part></tp:taxon-name></italic> Townes, 1981 (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>), with description of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Trachyserphus</tp:taxon-name-part></tp:taxon-name></italic> gen. n. and a new species. Zootaxa 4254(5). <ext-link xlink:href="10.11646/zootaxa.4254.5.6" ext-link-type="doi">https://doi.org/10.11646/zootaxa.4254.5.6</ext-link></mixed-citation>
      </ref>
      <ref id="B40">
        <mixed-citation>Kozlov M (1970) Groups of superfamily <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name> above genera (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>). Entomological Review 49(1): 203–226.</mixed-citation>
      </ref>
      <ref id="B41">
        <mixed-citation>Lin KS (1987) On the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Nothoserphus</tp:taxon-name-part></tp:taxon-name></italic> Brues, 1940 (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Serphidae</tp:taxon-name-part></tp:taxon-name>) from Taiwan. Special Publication of Taiwan Agricultural Research Institute 22: 51–66.</mixed-citation>
      </ref>
      <ref id="B42">
        <mixed-citation>Lin KS (1988) Two new genera of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Serphidae</tp:taxon-name-part></tp:taxon-name> from Taiwan (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, Serphoidea). Journal of Taiwan Museum 40(1): 15–33.</mixed-citation>
      </ref>
      <ref id="B43">
        <mixed-citation>Maddison WP, Maddison DR (2023) Mesquite: a modular system for evolutionary analysis. Version 3.80.</mixed-citation>
      </ref>
      <ref id="B44">
        <mixed-citation>Marshall SA (2023) Chapter 10. The “Proctotrupoids” Superfamilies <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Ceraphronoidea</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Diaprioidea</tp:taxon-name-part></tp:taxon-name>, Platygastrioidea and <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>. In: Marshall SA (Eds), <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name> The natural history &amp; diversity pf wasps, bees &amp; ants. Firefly Books Ltd., Ontario, 263–281.</mixed-citation>
      </ref>
      <ref id="B45">
        <mixed-citation>Masner L (1968) The fungus gnats (Dipt., Mycetophiloidea) as potential hosts of Proctotrupid waps (Hym., <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>). Acta Entomologica Bohemoslovaca 65: 464–466.</mixed-citation>
      </ref>
      <ref id="B46">
        <mixed-citation>Masner L (1993) Chapter 13 Superfamily <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>. In: Goulet H, Huber JT (Eds), <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name> of the world: an identification guide to families. Agriculture Canada, Ottawa, 537–557.</mixed-citation>
      </ref>
      <ref id="B47">
        <mixed-citation>Mikó I, Vilhelmsen L, Johnson NF, Masner L, Pénzes Z (2007) Skeletomusculature of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Scelionidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Platygastroidea</tp:taxon-name-part></tp:taxon-name>): head and mesosoma. Zootaxa 1571(1). <ext-link xlink:href="10.11646/zootaxa.1571.1.1" ext-link-type="doi">https://doi.org/10.11646/zootaxa.1571.1.1</ext-link></mixed-citation>
      </ref>
      <ref id="B48">
        <mixed-citation>Mikó I, Raymond M, Talamas EJ (2021) New family-level characters for <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Platygastroidea</tp:taxon-name-part></tp:taxon-name>. Journal of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name> Research 87: 235–249. <ext-link xlink:href="10.3897/jhr.87.72906" ext-link-type="doi">https://doi.org/10.3897/jhr.87.72906</ext-link></mixed-citation>
      </ref>
      <ref id="B49">
        <mixed-citation>Minh BQ, Schmidt HA, Chernomor O, Schrempf D, Woodhams MD, Von Haeseler A, Lanfear R (2020) IQ-TREE 2: new models and efficient methods for phylogenetic inference in the genomic era. Teeling E (Ed.). Molecular Biology and Evolution 37(5): 1530–1534. <ext-link xlink:href="10.1093/molbev/msaa015" ext-link-type="doi">https://doi.org/10.1093/molbev/msaa015</ext-link></mixed-citation>
      </ref>
      <ref id="B50">
        <mixed-citation>Nakamura H, Tikazawa Y, Shiratori S, Koda K, Chavez FG (2013) Invasion by an exotic insect pest, <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Epilachna</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species">varivestis</tp:taxon-name-part></tp:taxon-name></italic> Mulsant (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Coleoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Coccinellidae</tp:taxon-name-part></tp:taxon-name>) into Japan and the USA. Japanese Journal of Environmental Entomology and Zoology 24(3): 107–115.</mixed-citation>
      </ref>
      <ref id="B51">
        <mixed-citation>Nixon KC (2002) Winclada version 1.00.08. Available from: <ext-link xlink:href="http://www.cladistics.com/aboutWinc.htm" ext-link-type="uri">http://www.cladistics.com/aboutWinc.htm</ext-link>.</mixed-citation>
      </ref>
      <ref id="B52">
        <mixed-citation>Orlovskytė S, Budrys E, Budrienė A, Radzevičiūtė R, Soon V (2016) Sibling species in the <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Chrysis</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species">ignita</tp:taxon-name-part></tp:taxon-name></italic> complex: molecular, morphological and trophic differentiation of Baltic species, with a description of two new cryptic species (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Chrysididae</tp:taxon-name-part></tp:taxon-name>). Systematic Entomology 41(4): 771–793. <ext-link xlink:href="10.1111/syen.12190" ext-link-type="doi">https://doi.org/10.1111/syen.12190</ext-link></mixed-citation>
      </ref>
      <ref id="B53">
        <mixed-citation>Park B, Kim C-J, Lee J-W (2017) First record of the genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Codrus</tp:taxon-name-part></tp:taxon-name></italic> Panzer (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>) from South Korea with description of a new species. Entomological Research 47: 167–174.</mixed-citation>
      </ref>
      <ref id="B54">
        <mixed-citation>Peters RS, Krogmann L, Mayer C, Donath A, Gunkel S, Meusemann K, Kozlov A, Podsiadlowski L, Petersen M, Lanfear R, Diez PA, Heraty J, Kjer KM, Klopfstein S, Meier R, Polidori C, Schmitt T, Liu S, Zhou X, Wappler T, Rust J, Misof B, Niehuis O (2017) Evolutionary history of the <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>. Current Biology 27(7): 1013–1018. <ext-link xlink:href="10.1016/j.cub.2017.01.027" ext-link-type="doi">https://doi.org/10.1016/j.cub.2017.01.027</ext-link></mixed-citation>
      </ref>
      <ref id="B55">
        <mixed-citation>Poorani J (2023) An illustrated guide to lady beetles (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Coleoptera</tp:taxon-name-part></tp:taxon-name>: <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Coccinellidae</tp:taxon-name-part></tp:taxon-name>) of the Indian Subcontinent. Part 1. Tribe <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="tribe">Coccinellini</tp:taxon-name-part></tp:taxon-name>. Zootaxa 5332(1): 1–307. <ext-link xlink:href="10.11646/zootaxa.5332.1.1" ext-link-type="doi">https://doi.org/10.11646/zootaxa.5332.1.1</ext-link></mixed-citation>
      </ref>
      <ref id="B56">
        <mixed-citation>Rasnitsyn AP, Kolyada VA, Vorontsov DD, Öhm-Kühnle C (2022) The first <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>) in Burmese amber, with description of a new genus and species. Palaeoentomology 5(5): 445–451. <ext-link xlink:href="10.11646/palaeoentomology.5.5.5" ext-link-type="doi">https://doi.org/10.11646/palaeoentomology.5.5.5</ext-link></mixed-citation>
      </ref>
      <ref id="B57">
        <mixed-citation>Rambaut A, Drummond AJ, Xie D, Baele G and Suchard MA (2018) Posterior summarisation in Bayesian phylogenetics using Tracer 1.7. Systematic Biology 67 (5): 901–904. <ext-link xlink:href="10.1093/sysbio/syy032" ext-link-type="doi">https://doi.org/10.1093/sysbio/syy032</ext-link></mixed-citation>
      </ref>
      <ref id="B58">
        <mixed-citation>Rodríguez-Serrano E, Zúñiga-Reinoso A (2018) A new species of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Austrocodrus</tp:taxon-name-part></tp:taxon-name></italic> Ogloblin (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Proctotrupidae</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="subfamily">Austroserphinae</tp:taxon-name-part></tp:taxon-name>), a Gondwanic relict from southernmost South America. Zookeys 803: 155–160.</mixed-citation>
      </ref>
      <ref id="B59">
        <mixed-citation>Ronquist F, Teslenko M, Van Der Mark P, Ayres DL, Darling A, Höhna S, Larget B, Liu L, Suchard MA, Huelsenbeck JP (2012) MrBayes 3.2: Efficient Bayesian Phylogenetic Inference and Model Choice Across a Large Model Space. Systematic Biology 61(3): 539–542. <ext-link xlink:href="10.1093/sysbio/sys029" ext-link-type="doi">https://doi.org/10.1093/sysbio/sys029</ext-link></mixed-citation>
      </ref>
      <ref id="B60">
        <mixed-citation>Schulmeister S (2003) Simultaneous analysis of basal <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="class">Insecta</tp:taxon-name-part></tp:taxon-name>): introducing robust-choice sensitivity analysis. Biological Journal of the Linnean Society 79(2): 245–275. <ext-link xlink:href="10.1046/j.1095-8312.2003.00233.x" ext-link-type="doi">https://doi.org/10.1046/j.1095-8312.2003.00233.x</ext-link></mixed-citation>
      </ref>
      <ref id="B61">
        <mixed-citation>Sharkey MJ, Carpenter JM, Vilhelmsen L, Heraty J, Liljeblad J, Dowling APG, Schulmeister S, Murray D, Deans AR, Ronquist F, Krogmann L, Wheeler WC (2012) Phylogenetic relationships among superfamilies of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>. Cladistics 28(1): 80–112. <ext-link xlink:href="10.1111/j.1096-0031.2011.00366.x" ext-link-type="doi">https://doi.org/10.1111/j.1096-0031.2011.00366.x</ext-link></mixed-citation>
      </ref>
      <ref id="B62">
        <mixed-citation>Timokhov AV, Belokobylskij SA (2020) Review of the rare genus <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Vanhornia</tp:taxon-name-part></tp:taxon-name></italic> Crawford, 1909 (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="superfamily">Proctotrupoidea</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Vanhorniidae</tp:taxon-name-part></tp:taxon-name>) with description of a new species from the Russian Far East. Journal of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name> Research 79: 57–76. <ext-link xlink:href="10.3897/jhr.79.56481" ext-link-type="doi">https://doi.org/10.3897/jhr.79.56481</ext-link></mixed-citation>
      </ref>
      <ref id="B63">
        <mixed-citation>Townes H, Townes M (1981) A revision of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Serphidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>). Memoirs of the American Entomological Institute 32: 1–541.</mixed-citation>
      </ref>
      <ref id="B64">
        <mixed-citation>Vilhelmsen L, Turrisi GF (2011) Per arborem ad astra: Morphological adaptations to exploiting the woody habitat in the early evolution of <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>. Arthropod Structure &amp; Development 40(1): 2–20. <ext-link xlink:href="10.1016/j.asd.2010.10.001" ext-link-type="doi">https://doi.org/10.1016/j.asd.2010.10.001</ext-link></mixed-citation>
      </ref>
      <ref id="B65">
        <mixed-citation>Vilhelmsen L, Isidoro N, Romani R, Basibuyuk HH, Quicke DLJ (2001) Host location and oviposition in a basal group of parasitic wasps: the subgenual organ, ovipositor apparatus and associated structures in the <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Orussidae</tp:taxon-name-part></tp:taxon-name> (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="class">Insecta</tp:taxon-name-part></tp:taxon-name>). Zoomorphology 121(2): 63–84. <ext-link xlink:href="10.1007/s004350100046" ext-link-type="doi">https://doi.org/10.1007/s004350100046</ext-link></mixed-citation>
      </ref>
      <ref id="B66">
        <mixed-citation>Williams FX (1932) <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Exallonyx</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species">philonthiphagus</tp:taxon-name-part></tp:taxon-name></italic>, a new proctotrypid wasp in Hawaii, and its host. Proceeding of the Linnean Society of New South Wales 8: 205–209.</mixed-citation>
      </ref>
      <ref id="B67">
        <mixed-citation>Yoder MJ, Mikó I, Seltmann KC, Bertone MA, Deans AR (2010) A gross Anatomy Ontology for <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>. Moreau CS (Ed.). PLoS ONE 5(12): e15991. <ext-link xlink:href="10.1371/journal.pone.0015991" ext-link-type="doi">https://doi.org/10.1371/journal.pone.0015991</ext-link></mixed-citation>
      </ref>
      <ref id="B68">
        <mixed-citation>Zhang H, Zhang J (2001) Proctotrupoid wasps (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="class">Insecta</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>) from the Yixian formation of western Liaoning Province. Acta Micropalaentologica Sinica 18(1): 11–28.</mixed-citation>
      </ref>
      <ref id="B69">
        <mixed-citation>Zhang R-N, Achterberg CV, Tian X-X, He C-Y, Tan J-L (2020) Sexual variation in two species of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Helorus</tp:taxon-name-part></tp:taxon-name></italic> Latreille (<tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order">Hymenoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="family">Heloridae</tp:taxon-name-part></tp:taxon-name>) from NW China, with description of female of <italic><tp:taxon-name><tp:taxon-name-part taxon-name-part-type="genus">Helorus</tp:taxon-name-part> <tp:taxon-name-part taxon-name-part-type="species">caii</tp:taxon-name-part></tp:taxon-name></italic> He &amp;amp; Xu. Zootaxa 4821(3). <ext-link xlink:type="simple" ext-link-type="doi" xlink:href="10.11646/zootaxa.4821.3.8">https://doi.org/10.11646/zootaxa.4821.3.8</ext-link></mixed-citation>
      </ref>
    </ref-list>
    <sec sec-type="supplementary-material">
      <title>Supplementary materials</title>
      <supplementary-material id="S1" position="float" orientation="portrait" xlink:type="simple">
        <object-id content-type="doi">10.3897/asp.84.e175149.suppl1</object-id>
        <object-id content-type="arpha">02F7E5E8-C111-50C6-A4C1-4336B077CCF5</object-id>
        <label>Supplementary Material 1</label>
        <caption>
          <p>Figures S1–S7</p>
        </caption>
        <statement content-type="dataType">
          <label>Data type</label>
          <p><bold/>: .docx</p>
        </statement>
        <statement content-type="notes">
          <label>Explanation notes</label>
          <p><bold>Figure S1</bold>. The maximum likelihood tree based on mitochondrial 16S. The UltraBoot strap value and <abbrev xlink:title="SH-aLRT value">SH</abbrev> values are shown in each node (<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>/<abbrev xlink:title="SH-aLRT value">SH</abbrev>). — <bold>Figure S2</bold>. The maximum likelihood tree based on nuclear 18S. The UltraBoot strap value and <abbrev xlink:title="SH-aLRT value">SH</abbrev> values are shown in each node (<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>/<abbrev xlink:title="SH-aLRT value">SH</abbrev>). — <bold>Figure S3</bold>. The maximum likelihood tree based on nuclear 28S. The UltraBoot strap value and <abbrev xlink:title="SH-aLRT value">SH</abbrev> values are shown in each node (<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>/<abbrev xlink:title="SH-aLRT value">SH</abbrev>). — <bold>Figure S4</bold>. The maximum likelihood tree based on nuclear <abbrev xlink:title="polymerase II">POLII</abbrev>. The UltraBoot strap value and <abbrev xlink:title="SH-aLRT value">SH</abbrev> values are shown in each node (<abbrev xlink:title="Ultrafast bootstrap value">UFB</abbrev>/<abbrev xlink:title="SH-aLRT value">SH</abbrev>). — <bold>Figure S5</bold>. The result of ancestral state reconstruction for character mapping based on the states of host taxa. We coded it as <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Coleoptera">Coleoptera</tp:taxon-name-part></tp:taxon-name>, <tp:taxon-name><tp:taxon-name-part taxon-name-part-type="order" reg="Diptera">Diptera</tp:taxon-name-part></tp:taxon-name>, and others. — <bold>Figure S6</bold>. The result of ancestral state reconstruction for character mapping based on the states of host habitat. We coded it as open land, in forest, and soil. — <bold>Figure S7</bold>. The result of ancestral state reconstruction for character mapping based on the states of parasitism. We coded it as solitary and gregarious.</p>
        </statement>
        <media xlink:href="arthropod-systematics-84-343-s001.docx" mimetype="application" mime-subtype="vnd.openxmlformats-officedocument.wordprocessingml.document" position="float" orientation="portrait" id="oo_1676551.docx">
          <uri content-type="original_file">https://binary.pensoft.net/file/1676551</uri>
        </media>
        <permissions>
          <license>
            <license-p>This dataset is made available under the Open Database License (<ext-link ext-link-type="uri" xlink:href="http://opendatacommons.org/licenses/odbl/1.0">http://opendatacommons.org/licenses/odbl/1.0</ext-link>). The Open Database License (ODbL) is a license agreement intended to allow users to freely share, modify, and use this dataset while maintaining this same freedom for others, provided that the original source and author(s) are credited.</license-p>
          </license>
        </permissions>
        <attrib specific-use="authors"> Abe J, Mita T (2026)</attrib>
      </supplementary-material>
      <supplementary-material id="S2" position="float" orientation="portrait" xlink:type="simple">
        <object-id content-type="doi">10.3897/asp.84.e175149.suppl2</object-id>
        <object-id content-type="arpha">1FF8501B-0D35-5FAE-9888-FA4297157517</object-id>
        <label>Supplementary Material 2</label>
        <caption>
          <p>Tables S1–S5</p>
        </caption>
        <statement content-type="dataType">
          <label>Data type</label>
          <p><bold/>: .xlsx</p>
        </statement>
        <statement content-type="notes">
          <label>Explanation notes</label>
          <p><bold>Table SS1</bold>. Specimen data for phylogenetic analysis. Following data of each specimen are shown: location, trap used, date, collector name, DNA ID for DNA extraction, sex, and deposition. The type species of each genus was with asterisk (*) in species name. If data is lacking, it shows as space. — <bold>Table S2</bold>. Data matrix from morphological characters. Inapplicable characters are indicated by hyphen (–) and missing are indicated by question mark (?). — <bold>Table S3</bold>. DNA ID and the accession number of each species used for DNA extraction. — <bold>Table S4</bold>. Primers used for amplification. — <bold>Table S5</bold>. The results of model selection for phylogenetic analyses. — <bold>Table S6</bold>. Data matrix from biological characters. The characters with no information are indicated by question mark (?).</p>
        </statement>
        <media xlink:href="arthropod-systematics-84-343-s002.xlsx" mimetype="application" mime-subtype="vnd.openxmlformats-officedocument.spreadsheetml.sheet" position="float" orientation="portrait" id="oo_1676552.xlsx">
          <uri content-type="original_file">https://binary.pensoft.net/file/1676552</uri>
        </media>
        <permissions>
          <license>
            <license-p>This dataset is made available under the Open Database License (<ext-link ext-link-type="uri" xlink:href="http://opendatacommons.org/licenses/odbl/1.0">http://opendatacommons.org/licenses/odbl/1.0</ext-link>). The Open Database License (ODbL) is a license agreement intended to allow users to freely share, modify, and use this dataset while maintaining this same freedom for others, provided that the original source and author(s) are credited.</license-p>
          </license>
        </permissions>
        <attrib specific-use="authors"> Abe J, Mita T (2026)</attrib>
      </supplementary-material>
      <supplementary-material id="S3" position="float" orientation="portrait" xlink:type="simple">
        <object-id content-type="doi">10.3897/asp.84.e175149.suppl3</object-id>
        <object-id content-type="arpha">F38F7B5E-1F55-586E-B061-C42093747789</object-id>
        <label>Supplementary Material 3</label>
        <statement content-type="dataType">
          <label>Data type</label>
          <p><bold/>: .zip</p>
        </statement>
        <statement content-type="notes">
          <label>Explanation notes</label>
          <p><bold>File S1</bold>. The iqtree file for maximum likelihood analysis based on total evidence [.txt file]. — <bold>File S2</bold>. The data of matrix and models used for Bayesian analysis based on total evidence [.txt file].</p>
        </statement>
        <media xlink:href="arthropod-systematics-84-343-s003.zip" mimetype="application" mime-subtype="zip" position="float" orientation="portrait" id="oo_1676553.zip">
          <uri content-type="original_file">https://binary.pensoft.net/file/1676553</uri>
        </media>
        <permissions>
          <license>
            <license-p>This dataset is made available under the Open Database License (<ext-link ext-link-type="uri" xlink:href="http://opendatacommons.org/licenses/odbl/1.0">http://opendatacommons.org/licenses/odbl/1.0</ext-link>). The Open Database License (ODbL) is a license agreement intended to allow users to freely share, modify, and use this dataset while maintaining this same freedom for others, provided that the original source and author(s) are credited.</license-p>
          </license>
        </permissions>
        <attrib specific-use="authors"> Abe J, Mita T (2026)</attrib>
      </supplementary-material>
    </sec>
  </back>
</article>
