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Horizontal gene transfer - Wikipedia

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aria-controls="toc-Mechanisms-sublist" class="cdx-button cdx-button--weight-quiet cdx-button--icon-only vector-toc-toggle"> <span class="vector-icon mw-ui-icon-wikimedia-expand"></span> <span>Toggle Mechanisms subsection</span> </button> <ul id="toc-Mechanisms-sublist" class="vector-toc-list"> <li id="toc-Horizontal_transposon_transfer" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Horizontal_transposon_transfer"> <div class="vector-toc-text"> <span class="vector-toc-numb">2.1</span> <span>Horizontal transposon transfer</span> </div> </a> <ul id="toc-Horizontal_transposon_transfer-sublist" class="vector-toc-list"> </ul> </li> </ul> </li> <li id="toc-Methods_of_detection" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#Methods_of_detection"> <div class="vector-toc-text"> <span class="vector-toc-numb">3</span> <span>Methods of detection</span> </div> </a> <ul id="toc-Methods_of_detection-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Viruses" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#Viruses"> <div class="vector-toc-text"> <span class="vector-toc-numb">4</span> <span>Viruses</span> </div> </a> <ul id="toc-Viruses-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Prokaryotes" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#Prokaryotes"> <div class="vector-toc-text"> <span class="vector-toc-numb">5</span> <span>Prokaryotes</span> </div> </a> <button aria-controls="toc-Prokaryotes-sublist" class="cdx-button cdx-button--weight-quiet cdx-button--icon-only vector-toc-toggle"> <span class="vector-icon mw-ui-icon-wikimedia-expand"></span> <span>Toggle Prokaryotes subsection</span> </button> <ul id="toc-Prokaryotes-sublist" class="vector-toc-list"> <li id="toc-Bacterial_transformation" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Bacterial_transformation"> <div class="vector-toc-text"> <span class="vector-toc-numb">5.1</span> <span>Bacterial transformation</span> </div> </a> <ul id="toc-Bacterial_transformation-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Bacterial_conjugation" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Bacterial_conjugation"> <div class="vector-toc-text"> <span class="vector-toc-numb">5.2</span> <span>Bacterial conjugation</span> </div> </a> <ul id="toc-Bacterial_conjugation-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Archaeal_DNA_transfer" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Archaeal_DNA_transfer"> <div class="vector-toc-text"> <span class="vector-toc-numb">5.3</span> <span>Archaeal DNA transfer</span> </div> </a> <ul id="toc-Archaeal_DNA_transfer-sublist" class="vector-toc-list"> </ul> </li> </ul> </li> <li id="toc-Eukaryotes" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#Eukaryotes"> <div class="vector-toc-text"> <span class="vector-toc-numb">6</span> <span>Eukaryotes</span> </div> </a> <button aria-controls="toc-Eukaryotes-sublist" class="cdx-button cdx-button--weight-quiet cdx-button--icon-only vector-toc-toggle"> <span class="vector-icon mw-ui-icon-wikimedia-expand"></span> <span>Toggle Eukaryotes subsection</span> </button> <ul id="toc-Eukaryotes-sublist" class="vector-toc-list"> <li id="toc-Organelle_to_nuclear_genome" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Organelle_to_nuclear_genome"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.1</span> <span>Organelle to nuclear genome</span> </div> </a> <ul id="toc-Organelle_to_nuclear_genome-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Organelle_to_organelle" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Organelle_to_organelle"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.2</span> <span>Organelle to organelle</span> </div> </a> <ul id="toc-Organelle_to_organelle-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Bacteria_to_fungi" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Bacteria_to_fungi"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.3</span> <span>Bacteria to fungi</span> </div> </a> <ul id="toc-Bacteria_to_fungi-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Bacteria_to_plants" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Bacteria_to_plants"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.4</span> <span>Bacteria to plants</span> </div> </a> <ul id="toc-Bacteria_to_plants-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Bacteria_to_animals" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Bacteria_to_animals"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.5</span> <span>Bacteria to animals</span> </div> </a> <ul id="toc-Bacteria_to_animals-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Plant_to_plant" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Plant_to_plant"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.6</span> <span>Plant to plant</span> </div> </a> <ul id="toc-Plant_to_plant-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Plants_to_animals" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Plants_to_animals"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.7</span> <span>Plants to animals</span> </div> </a> <ul id="toc-Plants_to_animals-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Plant_to_fungus" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Plant_to_fungus"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.8</span> <span>Plant to fungus</span> </div> </a> <ul id="toc-Plant_to_fungus-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Plant_to_bacteria" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Plant_to_bacteria"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.9</span> <span>Plant to bacteria</span> </div> </a> <ul id="toc-Plant_to_bacteria-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Fungi_to_insects" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Fungi_to_insects"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.10</span> <span>Fungi to insects</span> </div> </a> <ul id="toc-Fungi_to_insects-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Fungi_to_fungi" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Fungi_to_fungi"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.11</span> <span>Fungi to fungi</span> </div> </a> <ul id="toc-Fungi_to_fungi-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Fungi_to_oomycetes" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Fungi_to_oomycetes"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.12</span> <span>Fungi to oomycetes</span> </div> </a> <ul id="toc-Fungi_to_oomycetes-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Oomycetes_to_fungi" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Oomycetes_to_fungi"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.13</span> <span>Oomycetes to fungi</span> </div> </a> <ul id="toc-Oomycetes_to_fungi-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Animals_to_animals" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Animals_to_animals"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.14</span> <span>Animals to animals</span> </div> </a> <ul id="toc-Animals_to_animals-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Animals_to_bacteria" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Animals_to_bacteria"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.15</span> <span>Animals to bacteria</span> </div> </a> <ul id="toc-Animals_to_bacteria-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Human_to_protozoan" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Human_to_protozoan"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.16</span> <span>Human to protozoan</span> </div> </a> <ul id="toc-Human_to_protozoan-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Human_genome" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Human_genome"> <div class="vector-toc-text"> <span class="vector-toc-numb">6.17</span> <span>Human genome</span> </div> </a> <ul id="toc-Human_genome-sublist" class="vector-toc-list"> </ul> </li> </ul> </li> <li id="toc-Compounds_found_to_promote_horizontal_gene_transfer" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#Compounds_found_to_promote_horizontal_gene_transfer"> <div class="vector-toc-text"> <span class="vector-toc-numb">7</span> <span>Compounds found to promote horizontal gene transfer</span> </div> </a> <ul id="toc-Compounds_found_to_promote_horizontal_gene_transfer-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Artificial_horizontal_gene_transfer" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#Artificial_horizontal_gene_transfer"> <div class="vector-toc-text"> <span class="vector-toc-numb">8</span> <span>Artificial horizontal gene transfer</span> </div> </a> <ul id="toc-Artificial_horizontal_gene_transfer-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-In_evolution" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#In_evolution"> <div class="vector-toc-text"> <span class="vector-toc-numb">9</span> <span>In evolution</span> </div> </a> <button aria-controls="toc-In_evolution-sublist" class="cdx-button cdx-button--weight-quiet cdx-button--icon-only vector-toc-toggle"> <span class="vector-icon mw-ui-icon-wikimedia-expand"></span> <span>Toggle In evolution subsection</span> </button> <ul id="toc-In_evolution-sublist" class="vector-toc-list"> <li id="toc-Challenge_to_the_tree_of_life" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Challenge_to_the_tree_of_life"> <div class="vector-toc-text"> <span class="vector-toc-numb">9.1</span> <span>Challenge to the tree of life</span> </div> </a> <ul id="toc-Challenge_to_the_tree_of_life-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Phylogenetic_information_in_HGT" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Phylogenetic_information_in_HGT"> <div class="vector-toc-text"> <span class="vector-toc-numb">9.2</span> <span>Phylogenetic information in HGT</span> </div> </a> <ul id="toc-Phylogenetic_information_in_HGT-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-The_chromosomal_organization_of_horizontal_gene_transfer" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#The_chromosomal_organization_of_horizontal_gene_transfer"> <div class="vector-toc-text"> <span class="vector-toc-numb">9.3</span> <span>The chromosomal organization of horizontal gene transfer</span> </div> </a> <ul id="toc-The_chromosomal_organization_of_horizontal_gene_transfer-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Genes" class="vector-toc-list-item vector-toc-level-2"> <a class="vector-toc-link" href="#Genes"> <div class="vector-toc-text"> <span class="vector-toc-numb">9.4</span> <span>Genes</span> </div> </a> <ul id="toc-Genes-sublist" class="vector-toc-list"> </ul> </li> </ul> </li> <li id="toc-See_also" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#See_also"> <div class="vector-toc-text"> <span class="vector-toc-numb">10</span> <span>See also</span> </div> </a> <ul id="toc-See_also-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-References" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#References"> <div class="vector-toc-text"> <span class="vector-toc-numb">11</span> <span>References</span> </div> </a> <ul id="toc-References-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-Further_reading" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#Further_reading"> <div class="vector-toc-text"> <span class="vector-toc-numb">12</span> <span>Further reading</span> </div> </a> <ul id="toc-Further_reading-sublist" class="vector-toc-list"> </ul> </li> <li id="toc-External_links" class="vector-toc-list-item vector-toc-level-1"> <a class="vector-toc-link" href="#External_links"> <div class="vector-toc-text"> <span class="vector-toc-numb">13</span> <span>External links</span> </div> </a> <ul id="toc-External_links-sublist" class="vector-toc-list"> </ul> </li> </ul> </div> </div> </nav> </div> </div> <div class="mw-content-container"> <main id="content" class="mw-body"> <header class="mw-body-header vector-page-titlebar"> <nav aria-label="Contents" class="vector-toc-landmark"> <div id="vector-page-titlebar-toc" class="vector-dropdown vector-page-titlebar-toc vector-button-flush-left" > <input type="checkbox" id="vector-page-titlebar-toc-checkbox" role="button" aria-haspopup="true" data-event-name="ui.dropdown-vector-page-titlebar-toc" class="vector-dropdown-checkbox " aria-label="Toggle the table of contents" > <label id="vector-page-titlebar-toc-label" for="vector-page-titlebar-toc-checkbox" class="vector-dropdown-label cdx-button cdx-button--fake-button cdx-button--fake-button--enabled cdx-button--weight-quiet cdx-button--icon-only " aria-hidden="true" ><span class="vector-icon mw-ui-icon-listBullet mw-ui-icon-wikimedia-listBullet"></span> <span class="vector-dropdown-label-text">Toggle the table of contents</span> </label> <div class="vector-dropdown-content"> <div id="vector-page-titlebar-toc-unpinned-container" class="vector-unpinned-container"> </div> </div> </div> </nav> <h1 id="firstHeading" class="firstHeading mw-first-heading"><span class="mw-page-title-main">Horizontal gene transfer</span></h1> <div id="p-lang-btn" class="vector-dropdown mw-portlet mw-portlet-lang" > <input type="checkbox" id="p-lang-btn-checkbox" role="button" aria-haspopup="true" data-event-name="ui.dropdown-p-lang-btn" class="vector-dropdown-checkbox mw-interlanguage-selector" aria-label="Go to an article in another language. Available in 38 languages" > <label id="p-lang-btn-label" for="p-lang-btn-checkbox" class="vector-dropdown-label cdx-button cdx-button--fake-button cdx-button--fake-button--enabled cdx-button--weight-quiet cdx-button--action-progressive mw-portlet-lang-heading-38" aria-hidden="true" ><span class="vector-icon mw-ui-icon-language-progressive mw-ui-icon-wikimedia-language-progressive"></span> <span class="vector-dropdown-label-text">38 languages</span> </label> <div class="vector-dropdown-content"> <div class="vector-menu-content"> <ul class="vector-menu-content-list"> <li class="interlanguage-link interwiki-ar mw-list-item"><a href="https://ar.wikipedia.org/wiki/%D9%86%D9%82%D9%84_%D8%A7%D9%84%D8%AC%D9%8A%D9%86%D8%A7%D8%AA_%D8%A7%D9%84%D8%A3%D9%81%D9%82%D9%8A" title="نقل الجينات الأفقي – Arabic" lang="ar" hreflang="ar" data-title="نقل الجينات الأفقي" data-language-autonym="العربية" data-language-local-name="Arabic" class="interlanguage-link-target"><span>العربية</span></a></li><li class="interlanguage-link interwiki-bg mw-list-item"><a href="https://bg.wikipedia.org/wiki/%D0%A5%D0%BE%D1%80%D0%B8%D0%B7%D0%BE%D0%BD%D1%82%D0%B0%D0%BB%D0%B5%D0%BD_%D0%B3%D0%B5%D0%BD%D0%B5%D0%BD_%D1%82%D1%80%D0%B0%D0%BD%D1%81%D1%84%D0%B5%D1%80" title="Хоризонтален генен трансфер – Bulgarian" lang="bg" hreflang="bg" data-title="Хоризонтален генен трансфер" data-language-autonym="Български" data-language-local-name="Bulgarian" class="interlanguage-link-target"><span>Български</span></a></li><li class="interlanguage-link interwiki-ca mw-list-item"><a href="https://ca.wikipedia.org/wiki/Transfer%C3%A8ncia_horitzontal_de_gens" title="Transferència horitzontal de gens – Catalan" lang="ca" hreflang="ca" data-title="Transferència horitzontal de gens" data-language-autonym="Català" data-language-local-name="Catalan" class="interlanguage-link-target"><span>Català</span></a></li><li class="interlanguage-link interwiki-cv mw-list-item"><a href="https://cv.wikipedia.org/wiki/%D0%93%D0%B5%D0%BD%D1%81%D0%B5%D0%BC_%D0%B3%D0%BE%D1%80%D0%B8%D0%B7%D0%BE%D0%BD%D1%82%D0%B0%D0%BB%D0%BB%C4%95_%D0%BA%D1%83%C3%A7%D0%BD%D0%B8" title="Генсем горизонталлĕ куçни – Chuvash" lang="cv" hreflang="cv" data-title="Генсем горизонталлĕ куçни" data-language-autonym="Чӑвашла" data-language-local-name="Chuvash" class="interlanguage-link-target"><span>Чӑвашла</span></a></li><li class="interlanguage-link interwiki-cs mw-list-item"><a href="https://cs.wikipedia.org/wiki/Horizont%C3%A1ln%C3%AD_p%C5%99enos_genetick%C3%A9_informace" title="Horizontální přenos genetické informace – Czech" lang="cs" hreflang="cs" data-title="Horizontální přenos genetické informace" data-language-autonym="Čeština" data-language-local-name="Czech" class="interlanguage-link-target"><span>Čeština</span></a></li><li class="interlanguage-link interwiki-da mw-list-item"><a href="https://da.wikipedia.org/wiki/Horisontal_genoverf%C3%B8rsel" title="Horisontal genoverførsel – Danish" lang="da" hreflang="da" data-title="Horisontal genoverførsel" data-language-autonym="Dansk" data-language-local-name="Danish" class="interlanguage-link-target"><span>Dansk</span></a></li><li class="interlanguage-link interwiki-de mw-list-item"><a href="https://de.wikipedia.org/wiki/Horizontaler_Gentransfer" title="Horizontaler Gentransfer – German" lang="de" hreflang="de" data-title="Horizontaler Gentransfer" data-language-autonym="Deutsch" data-language-local-name="German" class="interlanguage-link-target"><span>Deutsch</span></a></li><li class="interlanguage-link interwiki-et mw-list-item"><a href="https://et.wikipedia.org/wiki/Horisontaalne_geeni%C3%BClekanne" title="Horisontaalne geeniülekanne – Estonian" lang="et" hreflang="et" data-title="Horisontaalne geeniülekanne" data-language-autonym="Eesti" data-language-local-name="Estonian" class="interlanguage-link-target"><span>Eesti</span></a></li><li class="interlanguage-link interwiki-el mw-list-item"><a href="https://el.wikipedia.org/wiki/%CE%9F%CF%81%CE%B9%CE%B6%CF%8C%CE%BD%CF%84%CE%B9%CE%B1_%CE%BC%CE%B5%CF%84%CE%B1%CF%86%CE%BF%CF%81%CE%AC_%CE%B3%CE%BF%CE%BD%CE%B9%CE%B4%CE%AF%CF%89%CE%BD" title="Οριζόντια μεταφορά γονιδίων – Greek" lang="el" hreflang="el" data-title="Οριζόντια μεταφορά γονιδίων" data-language-autonym="Ελληνικά" data-language-local-name="Greek" class="interlanguage-link-target"><span>Ελληνικά</span></a></li><li class="interlanguage-link interwiki-es mw-list-item"><a href="https://es.wikipedia.org/wiki/Transferencia_gen%C3%A9tica_horizontal" title="Transferencia genética horizontal – Spanish" lang="es" hreflang="es" data-title="Transferencia genética horizontal" data-language-autonym="Español" data-language-local-name="Spanish" class="interlanguage-link-target"><span>Español</span></a></li><li class="interlanguage-link interwiki-eu mw-list-item"><a href="https://eu.wikipedia.org/wiki/Geneen_transferentzia_horizontala" title="Geneen transferentzia horizontala – Basque" lang="eu" hreflang="eu" data-title="Geneen transferentzia horizontala" data-language-autonym="Euskara" data-language-local-name="Basque" class="interlanguage-link-target"><span>Euskara</span></a></li><li class="interlanguage-link interwiki-fa mw-list-item"><a href="https://fa.wikipedia.org/wiki/%D8%A7%D9%86%D8%AA%D9%82%D8%A7%D9%84_%D8%A7%D9%81%D9%82%DB%8C_%DA%98%D9%86" title="انتقال افقی ژن – Persian" lang="fa" hreflang="fa" data-title="انتقال افقی ژن" data-language-autonym="فارسی" data-language-local-name="Persian" class="interlanguage-link-target"><span>فارسی</span></a></li><li class="interlanguage-link interwiki-fr mw-list-item"><a href="https://fr.wikipedia.org/wiki/Transfert_horizontal_de_g%C3%A8nes" title="Transfert horizontal de gènes – French" lang="fr" hreflang="fr" data-title="Transfert horizontal de gènes" data-language-autonym="Français" data-language-local-name="French" class="interlanguage-link-target"><span>Français</span></a></li><li class="interlanguage-link interwiki-ga mw-list-item"><a href="https://ga.wikipedia.org/wiki/Aistri%C3%BA_cothrom%C3%A1nach_g%C3%A9ine" title="Aistriú cothrománach géine – Irish" lang="ga" hreflang="ga" data-title="Aistriú cothrománach géine" data-language-autonym="Gaeilge" data-language-local-name="Irish" class="interlanguage-link-target"><span>Gaeilge</span></a></li><li class="interlanguage-link interwiki-gl mw-list-item"><a href="https://gl.wikipedia.org/wiki/Transferencia_horizontal_de_xenes" title="Transferencia horizontal de xenes – Galician" lang="gl" hreflang="gl" data-title="Transferencia horizontal de xenes" data-language-autonym="Galego" data-language-local-name="Galician" class="interlanguage-link-target"><span>Galego</span></a></li><li class="interlanguage-link interwiki-ko mw-list-item"><a href="https://ko.wikipedia.org/wiki/%EC%88%98%ED%8F%89%EC%A0%81_%EC%9C%A0%EC%A0%84%EC%9E%90_%EC%9D%B4%EB%8F%99" title="수평적 유전자 이동 – Korean" lang="ko" hreflang="ko" data-title="수평적 유전자 이동" 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гени – Macedonian" lang="mk" hreflang="mk" data-title="Хоризонтален пренос на гени" data-language-autonym="Македонски" data-language-local-name="Macedonian" class="interlanguage-link-target"><span>Македонски</span></a></li><li class="interlanguage-link interwiki-mn mw-list-item"><a href="https://mn.wikipedia.org/wiki/%D0%A5%D1%8D%D0%B2%D1%82%D1%8D%D1%8D_%D0%B3%D0%B5%D0%BD%D0%B8%D0%B9%D0%BD_%D1%88%D0%B8%D0%BB%D0%B6%D2%AF%D2%AF%D0%BB%D1%8D%D0%B3" title="Хэвтээ генийн шилжүүлэг – Mongolian" lang="mn" hreflang="mn" data-title="Хэвтээ генийн шилжүүлэг" data-language-autonym="Монгол" data-language-local-name="Mongolian" class="interlanguage-link-target"><span>Монгол</span></a></li><li class="interlanguage-link interwiki-nl mw-list-item"><a href="https://nl.wikipedia.org/wiki/Horizontale_genoverdracht" title="Horizontale genoverdracht – Dutch" lang="nl" hreflang="nl" data-title="Horizontale genoverdracht" data-language-autonym="Nederlands" data-language-local-name="Dutch" class="interlanguage-link-target"><span>Nederlands</span></a></li><li class="interlanguage-link interwiki-ja mw-list-item"><a href="https://ja.wikipedia.org/wiki/%E9%81%BA%E4%BC%9D%E5%AD%90%E3%81%AE%E6%B0%B4%E5%B9%B3%E4%BC%9D%E6%92%AD" title="遺伝子の水平伝播 – Japanese" lang="ja" hreflang="ja" data-title="遺伝子の水平伝播" data-language-autonym="日本語" data-language-local-name="Japanese" class="interlanguage-link-target"><span>日本語</span></a></li><li class="interlanguage-link interwiki-nn mw-list-item"><a href="https://nn.wikipedia.org/wiki/Horisontal_genoverf%C3%B8ring" title="Horisontal genoverføring – Norwegian Nynorsk" lang="nn" hreflang="nn" data-title="Horisontal genoverføring" data-language-autonym="Norsk nynorsk" data-language-local-name="Norwegian Nynorsk" class="interlanguage-link-target"><span>Norsk nynorsk</span></a></li><li class="interlanguage-link interwiki-pl mw-list-item"><a href="https://pl.wikipedia.org/wiki/Poziomy_transfer_gen%C3%B3w" title="Poziomy transfer genów – Polish" lang="pl" hreflang="pl" data-title="Poziomy transfer genów" data-language-autonym="Polski" data-language-local-name="Polish" class="interlanguage-link-target"><span>Polski</span></a></li><li class="interlanguage-link interwiki-pt mw-list-item"><a href="https://pt.wikipedia.org/wiki/Transfer%C3%AAncia_horizontal_de_genes" title="Transferência horizontal de genes – Portuguese" lang="pt" hreflang="pt" data-title="Transferência horizontal de genes" data-language-autonym="Português" data-language-local-name="Portuguese" class="interlanguage-link-target"><span>Português</span></a></li><li class="interlanguage-link interwiki-ru mw-list-item"><a href="https://ru.wikipedia.org/wiki/%D0%93%D0%BE%D1%80%D0%B8%D0%B7%D0%BE%D0%BD%D1%82%D0%B0%D0%BB%D1%8C%D0%BD%D1%8B%D0%B9_%D0%BF%D0%B5%D1%80%D0%B5%D0%BD%D0%BE%D1%81_%D0%B3%D0%B5%D0%BD%D0%BE%D0%B2" title="Горизонтальный перенос генов – Russian" lang="ru" hreflang="ru" data-title="Горизонтальный перенос генов" data-language-autonym="Русский" data-language-local-name="Russian" class="interlanguage-link-target"><span>Русский</span></a></li><li class="interlanguage-link interwiki-simple mw-list-item"><a href="https://simple.wikipedia.org/wiki/Horizontal_gene_transfer" title="Horizontal gene transfer – Simple English" lang="en-simple" hreflang="en-simple" data-title="Horizontal gene transfer" data-language-autonym="Simple English" data-language-local-name="Simple English" class="interlanguage-link-target"><span>Simple English</span></a></li><li class="interlanguage-link interwiki-fi mw-list-item"><a href="https://fi.wikipedia.org/wiki/Horisontaalinen_geeninsiirto" title="Horisontaalinen geeninsiirto – Finnish" lang="fi" hreflang="fi" data-title="Horisontaalinen geeninsiirto" data-language-autonym="Suomi" data-language-local-name="Finnish" class="interlanguage-link-target"><span>Suomi</span></a></li><li class="interlanguage-link interwiki-sv mw-list-item"><a href="https://sv.wikipedia.org/wiki/Gen%C3%B6verf%C3%B6ring" 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.hatnote{font-style:italic}.mw-parser-output div.hatnote{padding-left:1.6em;margin-bottom:0.5em}.mw-parser-output .hatnote i{font-style:normal}.mw-parser-output .hatnote+link+.hatnote{margin-top:-0.5em}@media print{body.ns-0 .mw-parser-output .hatnote{display:none!important}}</style><div role="note" class="hatnote navigation-not-searchable">"HGT" redirects here. For other uses, see <a href="/wiki/HGT_(disambiguation)" class="mw-disambig" title="HGT (disambiguation)">HGT (disambiguation)</a>.</div> <link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1236090951"><div role="note" class="hatnote navigation-not-searchable">This article is about the natural process. For artificial gene transfer, see <a href="/wiki/Gene_delivery" title="Gene delivery">Gene delivery</a>.</div> <figure class="mw-default-size" typeof="mw:File/Thumb"><a href="/wiki/File:Tree_Of_Life_(with_horizontal_gene_transfer).svg" class="mw-file-description"><img src="//upload.wikimedia.org/wikipedia/commons/thumb/1/1b/Tree_Of_Life_%28with_horizontal_gene_transfer%29.svg/220px-Tree_Of_Life_%28with_horizontal_gene_transfer%29.svg.png" decoding="async" width="220" height="293" class="mw-file-element" srcset="//upload.wikimedia.org/wikipedia/commons/thumb/1/1b/Tree_Of_Life_%28with_horizontal_gene_transfer%29.svg/330px-Tree_Of_Life_%28with_horizontal_gene_transfer%29.svg.png 1.5x, //upload.wikimedia.org/wikipedia/commons/thumb/1/1b/Tree_Of_Life_%28with_horizontal_gene_transfer%29.svg/440px-Tree_Of_Life_%28with_horizontal_gene_transfer%29.svg.png 2x" data-file-width="1782" data-file-height="2370" /></a><figcaption>Tree of life showing vertical and horizontal gene transfers</figcaption></figure> <p><b>Horizontal gene transfer</b> (<b>HGT</b>) or <b>lateral gene transfer</b> (<b>LGT</b>)<sup id="cite_ref-1" class="reference"><a href="#cite_note-1"><span class="cite-bracket">&#91;</span>1<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-2" class="reference"><a href="#cite_note-2"><span class="cite-bracket">&#91;</span>2<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-3" class="reference"><a href="#cite_note-3"><span class="cite-bracket">&#91;</span>3<span class="cite-bracket">&#93;</span></a></sup> is the movement of genetic material between <a href="/wiki/Organism" title="Organism">organisms</a> other than by the ("vertical") transmission of <a href="/wiki/DNA" title="DNA">DNA</a> from parent to offspring (<a href="/wiki/Reproduction" title="Reproduction">reproduction</a>).<sup id="cite_ref-4" class="reference"><a href="#cite_note-4"><span class="cite-bracket">&#91;</span>4<span class="cite-bracket">&#93;</span></a></sup> HGT is an important factor in the evolution of many organisms.<sup id="cite_ref-Gyles_2014_5-0" class="reference"><a href="#cite_note-Gyles_2014-5"><span class="cite-bracket">&#91;</span>5<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-6" class="reference"><a href="#cite_note-6"><span class="cite-bracket">&#91;</span>6<span class="cite-bracket">&#93;</span></a></sup> HGT is influencing scientific understanding of higher-order evolution while more significantly shifting perspectives on bacterial evolution.<sup id="cite_ref-Ochman_2005_7-0" class="reference"><a href="#cite_note-Ochman_2005-7"><span class="cite-bracket">&#91;</span>7<span class="cite-bracket">&#93;</span></a></sup> </p><p>Horizontal gene transfer is the primary mechanism for the spread of <a href="/wiki/Antibiotic_resistance" class="mw-redirect" title="Antibiotic resistance">antibiotic resistance</a> in bacteria,<sup id="cite_ref-8" class="reference"><a href="#cite_note-8"><span class="cite-bracket">&#91;</span>8<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Gyles_2014_5-1" class="reference"><a href="#cite_note-Gyles_2014-5"><span class="cite-bracket">&#91;</span>5<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-9" class="reference"><a href="#cite_note-9"><span class="cite-bracket">&#91;</span>9<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-10" class="reference"><a href="#cite_note-10"><span class="cite-bracket">&#91;</span>10<span class="cite-bracket">&#93;</span></a></sup> and plays an important role in the evolution of <a href="/wiki/Bacteria" title="Bacteria">bacteria</a> that can degrade novel compounds such as human-created <a href="/wiki/Bactericide" title="Bactericide">pesticides</a><sup id="cite_ref-11" class="reference"><a href="#cite_note-11"><span class="cite-bracket">&#91;</span>11<span class="cite-bracket">&#93;</span></a></sup> and in the evolution, maintenance, and transmission of <a href="/wiki/Virulence" title="Virulence">virulence</a>.<sup id="cite_ref-Keen_2012_12-0" class="reference"><a href="#cite_note-Keen_2012-12"><span class="cite-bracket">&#91;</span>12<span class="cite-bracket">&#93;</span></a></sup> It often involves <a href="/wiki/Temperateness_(virology)" title="Temperateness (virology)">temperate</a> <a href="/wiki/Bacteriophage" title="Bacteriophage">bacteriophages</a> and <a href="/wiki/Plasmids" class="mw-redirect" title="Plasmids">plasmids</a>.<sup id="cite_ref-13" class="reference"><a href="#cite_note-13"><span class="cite-bracket">&#91;</span>13<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-14" class="reference"><a href="#cite_note-14"><span class="cite-bracket">&#91;</span>14<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-15" class="reference"><a href="#cite_note-15"><span class="cite-bracket">&#91;</span>15<span class="cite-bracket">&#93;</span></a></sup> Genes responsible for antibiotic resistance in one species of bacteria can be transferred to another species of bacteria through various mechanisms of HGT such as <a href="/wiki/Transformation_(genetics)" class="mw-redirect" title="Transformation (genetics)">transformation</a>, <a href="/wiki/Transduction_(genetics)" title="Transduction (genetics)">transduction</a> and <a href="/wiki/Bacterial_conjugation" title="Bacterial conjugation">conjugation</a>, subsequently arming the antibiotic resistant genes' recipient against antibiotics. The rapid spread of antibiotic resistance genes in this manner is becoming a challenge to manage in the field of medicine. Ecological factors may also play a role in the HGT of antibiotic resistant genes.<sup id="cite_ref-16" class="reference"><a href="#cite_note-16"><span class="cite-bracket">&#91;</span>16<span class="cite-bracket">&#93;</span></a></sup> </p><p>Horizontal gene transfer is recognized as a pervasive evolutionary process that distributes genes between divergent prokaryotic lineages<sup id="cite_ref-Zhou_2021_17-0" class="reference"><a href="#cite_note-Zhou_2021-17"><span class="cite-bracket">&#91;</span>17<span class="cite-bracket">&#93;</span></a></sup> and can also involve eukaryotes.<sup id="cite_ref-Sieber_2017_18-0" class="reference"><a href="#cite_note-Sieber_2017-18"><span class="cite-bracket">&#91;</span>18<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Gabaldón_2021_19-0" class="reference"><a href="#cite_note-Gabaldón_2021-19"><span class="cite-bracket">&#91;</span>19<span class="cite-bracket">&#93;</span></a></sup> HGT events are thought to occur less frequently in eukaryotes than in prokaryotes. However, growing evidence indicates that HGT is relatively common among many eukaryotic species and can have an impact on adaptation to novel environments. Its study, however, is hindered by the complexity of eukaryotic genomes and the abundance of repeat-rich regions, which complicate the accurate identification and characterization of transferred genes.<sup id="cite_ref-20" class="reference"><a href="#cite_note-20"><span class="cite-bracket">&#91;</span>20<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-21" class="reference"><a href="#cite_note-21"><span class="cite-bracket">&#91;</span>21<span class="cite-bracket">&#93;</span></a></sup> </p><p>It is postulated that HGT promotes the maintenance of a universal life biochemistry and, subsequently, the universality of the genetic code.<sup id="cite_ref-22" class="reference"><a href="#cite_note-22"><span class="cite-bracket">&#91;</span>22<span class="cite-bracket">&#93;</span></a></sup> </p> <meta property="mw:PageProp/toc" /> <div class="mw-heading mw-heading2"><h2 id="History">History</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=1" title="Edit section: History"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p><a href="/wiki/Griffith%27s_experiment" title="Griffith&#39;s experiment">Griffith's experiment</a>, reported in 1928 by <a href="/wiki/Frederick_Griffith" title="Frederick Griffith">Frederick Griffith</a>,<sup id="cite_ref-23" class="reference"><a href="#cite_note-23"><span class="cite-bracket">&#91;</span>23<span class="cite-bracket">&#93;</span></a></sup> was the first experiment suggesting that bacteria are capable of transferring genetic information through a process known as <a href="/wiki/Transformation_(genetics)" class="mw-redirect" title="Transformation (genetics)">transformation</a>.<sup id="cite_ref-24" class="reference"><a href="#cite_note-24"><span class="cite-bracket">&#91;</span>24<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-25" class="reference"><a href="#cite_note-25"><span class="cite-bracket">&#91;</span>25<span class="cite-bracket">&#93;</span></a></sup> Griffith's findings <a href="/wiki/Avery%E2%80%93MacLeod%E2%80%93McCarty_experiment" title="Avery–MacLeod–McCarty experiment">were followed by research</a> in the late 1930s and early 1940s that isolated <a href="/wiki/DNA" title="DNA">DNA</a> as the material that communicated this genetic information. </p><p>Horizontal genetic transfer was then described in Seattle in 1951, in a paper demonstrating that the transfer of a viral gene into <i><a href="/wiki/Corynebacterium_diphtheriae" title="Corynebacterium diphtheriae">Corynebacterium diphtheriae</a></i> created a virulent strain from a non-virulent strain,<sup id="cite_ref-26" class="reference"><a href="#cite_note-26"><span class="cite-bracket">&#91;</span>26<span class="cite-bracket">&#93;</span></a></sup> simultaneously revealing the mechanism of <a href="/wiki/Diphtheria" title="Diphtheria">diphtheria</a> (that patients could be infected with the bacteria but not have any symptoms, and then suddenly convert later or never),<sup id="cite_ref-27" class="reference"><a href="#cite_note-27"><span class="cite-bracket">&#91;</span>27<span class="cite-bracket">&#93;</span></a></sup> and giving the first example for the relevance of the <a href="/wiki/Lysogenic_cycle" title="Lysogenic cycle">lysogenic cycle</a>.<sup id="cite_ref-28" class="reference"><a href="#cite_note-28"><span class="cite-bracket">&#91;</span>28<span class="cite-bracket">&#93;</span></a></sup> Inter-bacterial gene transfer was first described in Japan in a 1959 publication that demonstrated the transfer of antibiotic resistance between different species of <a href="/wiki/Bacteria" title="Bacteria">bacteria</a>.<sup id="cite_ref-29" class="reference"><a href="#cite_note-29"><span class="cite-bracket">&#91;</span>29<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-30" class="reference"><a href="#cite_note-30"><span class="cite-bracket">&#91;</span>30<span class="cite-bracket">&#93;</span></a></sup> In the mid-1980s, Syvanen<sup id="cite_ref-31" class="reference"><a href="#cite_note-31"><span class="cite-bracket">&#91;</span>31<span class="cite-bracket">&#93;</span></a></sup> postulated that biologically significant lateral gene transfer has existed since the beginning of life on Earth and has been involved in shaping all of evolutionary history. </p><p>As Jian, Rivera and Lake (1999) put it: "Increasingly, studies of genes and genomes are indicating that considerable horizontal transfer has occurred between <a href="/wiki/Prokaryote" title="Prokaryote">prokaryotes</a>"<sup id="cite_ref-32" class="reference"><a href="#cite_note-32"><span class="cite-bracket">&#91;</span>32<span class="cite-bracket">&#93;</span></a></sup> (see also Lake and Rivera, 2007).<sup id="cite_ref-33" class="reference"><a href="#cite_note-33"><span class="cite-bracket">&#91;</span>33<span class="cite-bracket">&#93;</span></a></sup> The phenomenon appears to have had some significance for unicellular <a href="/wiki/Eukaryote" title="Eukaryote">eukaryotes</a> as well. As Bapteste et al. (2005) observe, "additional evidence suggests that gene transfer might also be an important evolutionary mechanism in <a href="/wiki/Protist" title="Protist">protist</a> evolution."<sup id="cite_ref-34" class="reference"><a href="#cite_note-34"><span class="cite-bracket">&#91;</span>34<span class="cite-bracket">&#93;</span></a></sup> </p><p>Grafting of one plant to another can transfer <a href="/wiki/Chloroplast" title="Chloroplast">chloroplasts</a> (<a href="/wiki/Organelle" title="Organelle">organelles</a> in plant cells that conduct <a href="/wiki/Photosynthesis" title="Photosynthesis">photosynthesis</a>), <a href="/wiki/Mitochondrial_DNA" title="Mitochondrial DNA">mitochondrial DNA</a>, and the entire <a href="/wiki/Cell_nucleus" title="Cell nucleus">cell nucleus</a> containing the <a href="/wiki/Genome" title="Genome">genome</a> to potentially make a new species.<sup id="cite_ref-35" class="reference"><a href="#cite_note-35"><span class="cite-bracket">&#91;</span>35<span class="cite-bracket">&#93;</span></a></sup> Some <a href="/wiki/Lepidoptera" title="Lepidoptera">Lepidoptera</a> (e.g. <a href="/wiki/Monarch_butterflies" class="mw-redirect" title="Monarch butterflies">monarch butterflies</a> and <a href="/wiki/Silkworm" class="mw-redirect" title="Silkworm">silkworms</a>) have been genetically modified by horizontal gene transfer from the wasp <a href="/wiki/Bracovirus" title="Bracovirus">bracovirus</a>.<sup id="cite_ref-36" class="reference"><a href="#cite_note-36"><span class="cite-bracket">&#91;</span>36<span class="cite-bracket">&#93;</span></a></sup> Bites from insects in the family <a href="/wiki/Reduviidae" title="Reduviidae">Reduviidae</a> (assassin bugs) can, via a parasite, infect humans with the <a href="/wiki/Trypanosoma" title="Trypanosoma">trypanosomal</a> <a href="/wiki/Chagas_disease" title="Chagas disease">Chagas disease</a>, which can insert its DNA into the human genome.<sup id="cite_ref-37" class="reference"><a href="#cite_note-37"><span class="cite-bracket">&#91;</span>37<span class="cite-bracket">&#93;</span></a></sup> It has been suggested that lateral gene transfer to humans from bacteria may play a role in cancer.<sup id="cite_ref-38" class="reference"><a href="#cite_note-38"><span class="cite-bracket">&#91;</span>38<span class="cite-bracket">&#93;</span></a></sup> </p><p>Aaron Richardson and <a href="/wiki/Jeffrey_D._Palmer" title="Jeffrey D. Palmer">Jeffrey D. Palmer</a> state: "Horizontal gene transfer (HGT) has played a major role in bacterial evolution and is fairly common in certain unicellular eukaryotes. However, the prevalence and importance of HGT in the evolution of <a href="/wiki/Multicellular" class="mw-redirect" title="Multicellular">multicellular</a> eukaryotes remain unclear."<sup id="cite_ref-39" class="reference"><a href="#cite_note-39"><span class="cite-bracket">&#91;</span>39<span class="cite-bracket">&#93;</span></a></sup> </p><p>Due to the increasing amount of evidence suggesting the importance of these phenomena for evolution (see <a href="#Importance_in_evolution">below</a>) molecular biologists such as Peter Gogarten have described horizontal gene transfer as "A New Paradigm for Biology".<sup id="cite_ref-Gogarten_2000_40-0" class="reference"><a href="#cite_note-Gogarten_2000-40"><span class="cite-bracket">&#91;</span>40<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading2"><h2 id="Mechanisms">Mechanisms</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=2" title="Edit section: Mechanisms"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p>There are several mechanisms for horizontal gene transfer:<sup id="cite_ref-Gyles_2014_5-2" class="reference"><a href="#cite_note-Gyles_2014-5"><span class="cite-bracket">&#91;</span>5<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Todar_2012_41-0" class="reference"><a href="#cite_note-Todar_2012-41"><span class="cite-bracket">&#91;</span>41<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Maloy_2002_42-0" class="reference"><a href="#cite_note-Maloy_2002-42"><span class="cite-bracket">&#91;</span>42<span class="cite-bracket">&#93;</span></a></sup> </p> <ul><li><a href="/wiki/Transformation_(genetics)" class="mw-redirect" title="Transformation (genetics)">Transformation</a>, the genetic alteration of a <a href="/wiki/Cell_(biology)" title="Cell (biology)">cell</a> resulting from the introduction, uptake and <a href="/wiki/Gene_expression" title="Gene expression">expression</a> of foreign genetic material (<a href="/wiki/DNA" title="DNA">DNA</a> or <a href="/wiki/RNA" title="RNA">RNA</a>).<sup id="cite_ref-Stearns_2005_43-0" class="reference"><a href="#cite_note-Stearns_2005-43"><span class="cite-bracket">&#91;</span>43<span class="cite-bracket">&#93;</span></a></sup> This process is relatively common in bacteria, but less so in eukaryotes.<sup id="cite_ref-44" class="reference"><a href="#cite_note-44"><span class="cite-bracket">&#91;</span>44<span class="cite-bracket">&#93;</span></a></sup> Transformation is often used in laboratories to insert novel genes into bacteria for experiments or for industrial or medical applications. See also <a href="/wiki/Molecular_biology" title="Molecular biology">molecular biology</a> and <a href="/wiki/Biotechnology" title="Biotechnology">biotechnology</a>.<sup class="noprint Inline-Template Template-Fact" style="white-space:nowrap;">&#91;<i><a href="/wiki/Wikipedia:Citation_needed" title="Wikipedia:Citation needed"><span title="This claim needs references to reliable sources. (February 2023)">citation needed</span></a></i>&#93;</sup></li> <li><a href="/wiki/Transduction_(genetics)" title="Transduction (genetics)">Transduction</a>, the process in which bacterial DNA is moved from one bacterium to another by a virus (a bacteriophage, or <a href="/wiki/Phage" class="mw-redirect" title="Phage">phage</a>).<sup id="cite_ref-Stearns_2005_43-1" class="reference"><a href="#cite_note-Stearns_2005-43"><span class="cite-bracket">&#91;</span>43<span class="cite-bracket">&#93;</span></a></sup></li> <li><a href="/wiki/Bacterial_conjugation" title="Bacterial conjugation">Bacterial conjugation</a>, a process that involves the transfer of DNA via a plasmid from a donor cell to a recombinant recipient cell during cell-to-cell contact.<sup id="cite_ref-Stearns_2005_43-2" class="reference"><a href="#cite_note-Stearns_2005-43"><span class="cite-bracket">&#91;</span>43<span class="cite-bracket">&#93;</span></a></sup></li> <li><a href="/wiki/Gene_transfer_agent" title="Gene transfer agent">Gene transfer agents</a>, virus-like elements encoded by the host that are found in the <a href="/wiki/Alphaproteobacteria" title="Alphaproteobacteria">alphaproteobacteria</a> order <a href="/wiki/Rhodobacterales" title="Rhodobacterales">Rhodobacterales</a>.<sup id="cite_ref-McDaniel_2010_45-0" class="reference"><a href="#cite_note-McDaniel_2010-45"><span class="cite-bracket">&#91;</span>45<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Horizontal_transposon_transfer">Horizontal transposon transfer</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=3" title="Edit section: Horizontal transposon transfer"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p>A <a href="/wiki/Transposable_element" title="Transposable element">transposable element</a> (TE) (also called a transposon or jumping gene) is a mobile segment of DNA that can sometimes pick up a resistance gene and insert it into a plasmid or chromosome, thereby inducing horizontal gene transfer of antibiotic resistance.<sup id="cite_ref-Stearns_2005_43-3" class="reference"><a href="#cite_note-Stearns_2005-43"><span class="cite-bracket">&#91;</span>43<span class="cite-bracket">&#93;</span></a></sup> </p><p>Horizontal transposon transfer (HTT) refers to the passage of pieces of DNA that are characterized by their ability to move from one <a href="/wiki/Gene_locus" class="mw-redirect" title="Gene locus">locus</a> to another between genomes by means other than parent-to-offspring inheritance. Horizontal gene transfer has long been thought to be crucial to prokaryotic evolution, but there is a growing amount of data showing that HTT is a common and widespread phenomenon in <a href="/wiki/Eukaryote" title="Eukaryote">eukaryote</a> evolution as well.<sup id="cite_ref-Schaack_2010_46-0" class="reference"><a href="#cite_note-Schaack_2010-46"><span class="cite-bracket">&#91;</span>46<span class="cite-bracket">&#93;</span></a></sup> On the transposable element side, spreading between genomes via horizontal transfer may be viewed as a strategy to escape purging due to purifying selection, mutational decay and/or host defense mechanisms.<sup id="cite_ref-Dupeyron_2014_47-0" class="reference"><a href="#cite_note-Dupeyron_2014-47"><span class="cite-bracket">&#91;</span>47<span class="cite-bracket">&#93;</span></a></sup> </p><p>HTT can occur with any type of transposable elements, but <a href="/wiki/DNA_transposon" title="DNA transposon">DNA transposons</a> and <a href="/wiki/Retroelement" class="mw-redirect" title="Retroelement">LTR retroelements</a> are more likely to be capable of HTT because both have a stable, double-stranded DNA intermediate that is thought to be sturdier than the single-stranded RNA intermediate of <a href="/wiki/Retroelement" class="mw-redirect" title="Retroelement">non-LTR retroelements</a>, which can be highly degradable.<sup id="cite_ref-Schaack_2010_46-1" class="reference"><a href="#cite_note-Schaack_2010-46"><span class="cite-bracket">&#91;</span>46<span class="cite-bracket">&#93;</span></a></sup> <a href="/wiki/Transposable_element" title="Transposable element">Non-autonomous elements</a> may be less likely to transfer horizontally compared to <a href="/wiki/Transposable_element" title="Transposable element">autonomous elements</a> because they do not encode the proteins required for their own mobilization. The structure of these non-autonomous elements generally consists of an intronless gene encoding a <a href="/wiki/Transposase" title="Transposase">transposase</a> protein, and may or may not have a promoter sequence. Those that do not have promoter sequences encoded within the mobile region rely on adjacent host promoters for expression.<sup id="cite_ref-Schaack_2010_46-2" class="reference"><a href="#cite_note-Schaack_2010-46"><span class="cite-bracket">&#91;</span>46<span class="cite-bracket">&#93;</span></a></sup> Horizontal transfer is thought to play an important role in the TE life cycle.<sup id="cite_ref-Schaack_2010_46-3" class="reference"><a href="#cite_note-Schaack_2010-46"><span class="cite-bracket">&#91;</span>46<span class="cite-bracket">&#93;</span></a></sup> In plants, it appears that <a href="/wiki/LTR_retrotransposons" class="mw-redirect" title="LTR retrotransposons">LTR retrotransposons</a> of the Copia superfamilies, especially those with low copy numbers from the Ale and Ivana lineages, are more likely to undergo horizontal transfer between different plant species.<sup id="cite_ref-Aubin_2023_48-0" class="reference"><a href="#cite_note-Aubin_2023-48"><span class="cite-bracket">&#91;</span>48<span class="cite-bracket">&#93;</span></a></sup> </p><p>HTT has been shown to occur between species and across continents in both plants<sup id="cite_ref-Baidouri_2014_49-0" class="reference"><a href="#cite_note-Baidouri_2014-49"><span class="cite-bracket">&#91;</span>49<span class="cite-bracket">&#93;</span></a></sup> and animals (Ivancevic et al. 2013), though some TEs have been shown to more successfully colonize the genomes of certain species over others.<sup id="cite_ref-Ivancevic_2013_50-0" class="reference"><a href="#cite_note-Ivancevic_2013-50"><span class="cite-bracket">&#91;</span>50<span class="cite-bracket">&#93;</span></a></sup> Both spatial and taxonomic proximity of species has been proposed to favor HTTs in plants and animals.<sup id="cite_ref-Baidouri_2014_49-1" class="reference"><a href="#cite_note-Baidouri_2014-49"><span class="cite-bracket">&#91;</span>49<span class="cite-bracket">&#93;</span></a></sup> It is unknown how the density of a population may affect the rate of HTT events within a population, but close proximity due to <a href="/wiki/Parasitism" title="Parasitism">parasitism</a> and cross contamination due to crowding have been proposed to favor HTT in both plants and animals.<sup id="cite_ref-Baidouri_2014_49-2" class="reference"><a href="#cite_note-Baidouri_2014-49"><span class="cite-bracket">&#91;</span>49<span class="cite-bracket">&#93;</span></a></sup> In plants, the interaction between lianas and trees has been shown to facilitate HTT in natural ecosystems.<sup id="cite_ref-Aubin_2023_48-1" class="reference"><a href="#cite_note-Aubin_2023-48"><span class="cite-bracket">&#91;</span>48<span class="cite-bracket">&#93;</span></a></sup> Successful transfer of a transposable element requires delivery of DNA from donor to host cell (and to the germ line for multi-cellular organisms), followed by integration into the recipient host genome.<sup id="cite_ref-Schaack_2010_46-4" class="reference"><a href="#cite_note-Schaack_2010-46"><span class="cite-bracket">&#91;</span>46<span class="cite-bracket">&#93;</span></a></sup> Though the actual mechanism for the transportation of TEs from donor cells to host cells is unknown, it is established that <a href="/wiki/Naked_DNA" class="mw-redirect" title="Naked DNA">naked DNA</a> and RNA can circulate in bodily fluid.<sup id="cite_ref-Schaack_2010_46-5" class="reference"><a href="#cite_note-Schaack_2010-46"><span class="cite-bracket">&#91;</span>46<span class="cite-bracket">&#93;</span></a></sup> Many proposed vectors include arthropods, viruses, freshwater snails (Ivancevic et al. 2013), endosymbiotic bacteria,<sup id="cite_ref-Dupeyron_2014_47-1" class="reference"><a href="#cite_note-Dupeyron_2014-47"><span class="cite-bracket">&#91;</span>47<span class="cite-bracket">&#93;</span></a></sup> and intracellular parasitic bacteria.<sup id="cite_ref-Schaack_2010_46-6" class="reference"><a href="#cite_note-Schaack_2010-46"><span class="cite-bracket">&#91;</span>46<span class="cite-bracket">&#93;</span></a></sup> In some cases, even TEs facilitate transport for other TEs.<sup id="cite_ref-Ivancevic_2013_50-1" class="reference"><a href="#cite_note-Ivancevic_2013-50"><span class="cite-bracket">&#91;</span>50<span class="cite-bracket">&#93;</span></a></sup> </p><p>The arrival of a new TE in a host genome can have detrimental consequences because TE mobility may induce mutation. However, HTT can also be beneficial by introducing new genetic material into a genome and promoting the shuffling of genes and TE domains among hosts, which can be co-opted by the host genome to perform new functions.<sup id="cite_ref-Ivancevic_2013_50-2" class="reference"><a href="#cite_note-Ivancevic_2013-50"><span class="cite-bracket">&#91;</span>50<span class="cite-bracket">&#93;</span></a></sup> Moreover, transposition activity increases the TE copy number and generates <a href="/wiki/Chromosomal_rearrangement" title="Chromosomal rearrangement">chromosomal rearrangement</a> hotspots.<sup id="cite_ref-Wallau_2012_51-0" class="reference"><a href="#cite_note-Wallau_2012-51"><span class="cite-bracket">&#91;</span>51<span class="cite-bracket">&#93;</span></a></sup> HTT detection is a difficult task because it is an ongoing phenomenon that is constantly changing in frequency of occurrence and composition of TEs inside host genomes. Furthermore, few species have been analyzed for HTT, making it difficult to establish patterns of HTT events between species. These issues can lead to the underestimation or overestimation of HTT events between ancestral and current eukaryotic species.<sup id="cite_ref-Wallau_2012_51-1" class="reference"><a href="#cite_note-Wallau_2012-51"><span class="cite-bracket">&#91;</span>51<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading2"><h2 id="Methods_of_detection">Methods of detection</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=4" title="Edit section: Methods of detection"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <figure class="mw-default-size" typeof="mw:File/Thumb"><a href="/wiki/File:Xenology.svg" class="mw-file-description"><img src="//upload.wikimedia.org/wikipedia/commons/thumb/0/0d/Xenology.svg/220px-Xenology.svg.png" decoding="async" width="220" height="124" class="mw-file-element" srcset="//upload.wikimedia.org/wikipedia/commons/thumb/0/0d/Xenology.svg/330px-Xenology.svg.png 1.5x, //upload.wikimedia.org/wikipedia/commons/thumb/0/0d/Xenology.svg/440px-Xenology.svg.png 2x" data-file-width="709" data-file-height="401" /></a><figcaption>A speciation event produces <a href="/wiki/Ortholog" class="mw-redirect" title="Ortholog">orthologs</a> of a gene in the two daughter species. A horizontal gene transfer event from one species to another adds a <a href="/wiki/Xenolog" class="mw-redirect" title="Xenolog">xenolog</a> of the gene to the receiving genome.</figcaption></figure> <link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1236090951"><div role="note" class="hatnote navigation-not-searchable">Main article: <a href="/wiki/Inferring_horizontal_gene_transfer" title="Inferring horizontal gene transfer">Inferring horizontal gene transfer</a></div> <p>Horizontal gene transfer is typically inferred using <a href="/wiki/Bioinformatics" title="Bioinformatics">bioinformatics</a> methods, either by identifying atypical sequence signatures ("parametric" methods) or by identifying strong discrepancies between the evolutionary history of particular sequences compared to that of their hosts. The transferred gene (<a href="/wiki/Xenolog" class="mw-redirect" title="Xenolog">xenolog</a>) found in the receiving species is more closely related to the genes of the donor species than would be expected.<sup class="noprint Inline-Template Template-Fact" style="white-space:nowrap;">&#91;<i><a href="/wiki/Wikipedia:Citation_needed" title="Wikipedia:Citation needed"><span title="This claim needs references to reliable sources. (February 2023)">citation needed</span></a></i>&#93;</sup> </p> <div class="mw-heading mw-heading2"><h2 id="Viruses">Viruses</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=5" title="Edit section: Viruses"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div><p> The <a href="/wiki/Virus" title="Virus">virus</a> called <i><a href="/wiki/Mimivirus" title="Mimivirus">Mimivirus</a></i> infects <a href="/wiki/Amoebae" class="mw-redirect" title="Amoebae">amoebae</a>. Another virus, called <i><a href="/wiki/Sputnik_(virus)" class="mw-redirect" title="Sputnik (virus)">Sputnik</a></i>, also infects amoebae, but it cannot reproduce unless mimivirus has already infected the same cell.<sup id="cite_ref-La_Scola_2008_52-0" class="reference"><a href="#cite_note-La_Scola_2008-52"><span class="cite-bracket">&#91;</span>52<span class="cite-bracket">&#93;</span></a></sup> </p><blockquote><p>Sputnik's <a href="/wiki/Genome" title="Genome">genome</a> reveals further insight into its biology. Although 13 of its genes show little similarity to any other known genes, three are closely related to mimivirus and <a href="/wiki/Mamavirus" title="Mamavirus">mamavirus</a> genes, perhaps cannibalized by the tiny virus as it packaged up particles sometime in its history. This suggests that the <a href="/wiki/Satellite_virus" class="mw-redirect" title="Satellite virus">satellite virus</a> could perform horizontal gene transfer between viruses, paralleling the way that bacteriophages ferry genes between bacteria.<sup id="cite_ref-53" class="reference"><a href="#cite_note-53"><span class="cite-bracket">&#91;</span>53<span class="cite-bracket">&#93;</span></a></sup></p></blockquote><p> Horizontal transfer is also seen between geminiviruses and tobacco plants. </p><div class="mw-heading mw-heading2"><h2 id="Prokaryotes">Prokaryotes</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=6" title="Edit section: Prokaryotes"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p>Horizontal gene transfer is common among bacteria, even among very distantly related ones. This process is thought to be a significant cause of increased <a href="/wiki/Drug_resistance" title="Drug resistance">drug resistance</a><sup id="cite_ref-Gyles_2014_5-3" class="reference"><a href="#cite_note-Gyles_2014-5"><span class="cite-bracket">&#91;</span>5<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Barlow_2009_54-0" class="reference"><a href="#cite_note-Barlow_2009-54"><span class="cite-bracket">&#91;</span>54<span class="cite-bracket">&#93;</span></a></sup> when one bacterial cell acquires resistance, and the resistance genes are transferred to the other species.<sup id="cite_ref-Hawkey_2009_55-0" class="reference"><a href="#cite_note-Hawkey_2009-55"><span class="cite-bracket">&#91;</span>55<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Francino_2012_56-0" class="reference"><a href="#cite_note-Francino_2012-56"><span class="cite-bracket">&#91;</span>56<span class="cite-bracket">&#93;</span></a></sup> Transposition and horizontal gene transfer, along with strong natural selective forces have led to multi-drug resistant strains of <i><a href="/wiki/Staphylococcus_aureus" title="Staphylococcus aureus">S. aureus</a></i> and many other pathogenic bacteria.<sup id="cite_ref-Stearns_2005_43-4" class="reference"><a href="#cite_note-Stearns_2005-43"><span class="cite-bracket">&#91;</span>43<span class="cite-bracket">&#93;</span></a></sup> Horizontal gene transfer also plays a role in the spread of virulence factors, such as <a href="/wiki/Exotoxin" title="Exotoxin">exotoxins</a> and <a href="/wiki/Exoenzyme" title="Exoenzyme">exoenzymes</a>, amongst bacteria.<sup id="cite_ref-Gyles_2014_5-4" class="reference"><a href="#cite_note-Gyles_2014-5"><span class="cite-bracket">&#91;</span>5<span class="cite-bracket">&#93;</span></a></sup> A prime example concerning the spread of exotoxins is the adaptive evolution of <a href="/wiki/Shiga_toxin" title="Shiga toxin">Shiga toxins</a> in <i>E. coli</i> through horizontal gene transfer via transduction with <i><a href="/wiki/Shigella" title="Shigella">Shigella</a></i> species of bacteria.<sup id="cite_ref-57" class="reference"><a href="#cite_note-57"><span class="cite-bracket">&#91;</span>57<span class="cite-bracket">&#93;</span></a></sup> Strategies to combat certain bacterial infections by targeting these specific virulence factors and mobile genetic elements have been proposed.<sup id="cite_ref-Keen_2012_12-1" class="reference"><a href="#cite_note-Keen_2012-12"><span class="cite-bracket">&#91;</span>12<span class="cite-bracket">&#93;</span></a></sup> For example, horizontally transferred genetic elements play important roles in the virulence of <i><a href="/wiki/Escherichia_coli" title="Escherichia coli">E. coli</a></i>, <i><a href="/wiki/Salmonella" title="Salmonella">Salmonella</a></i>, <i><a href="/wiki/Streptococcus" title="Streptococcus">Streptococcus</a></i> and <i><a href="/wiki/Clostridium_perfringens" title="Clostridium perfringens">Clostridium perfringens</a></i>.<sup id="cite_ref-Gyles_2014_5-5" class="reference"><a href="#cite_note-Gyles_2014-5"><span class="cite-bracket">&#91;</span>5<span class="cite-bracket">&#93;</span></a></sup> </p><p>In prokaryotes, restriction-modification systems are known to provide immunity against horizontal gene transfer and in stabilizing mobile genetic elements. Genes encoding restriction modification systems have been reported to move between prokaryotic genomes within <a href="/wiki/Mobile_genetic_elements" title="Mobile genetic elements">mobile genetic elements</a> (MGE) such as <a href="/wiki/Plasmid" title="Plasmid">plasmids</a>, <a href="/wiki/Prophage" title="Prophage">prophages</a>, insertion sequences/transposons, integrative conjugative elements (ICE),<sup id="cite_ref-58" class="reference"><a href="#cite_note-58"><span class="cite-bracket">&#91;</span>58<span class="cite-bracket">&#93;</span></a></sup> and <a href="/wiki/Integron" title="Integron">integrons</a>. Still, they are more frequently a chromosomal-encoded barrier to MGE than an MGE-encoded tool for cell infection.<sup id="cite_ref-Oliveira_2014_59-0" class="reference"><a href="#cite_note-Oliveira_2014-59"><span class="cite-bracket">&#91;</span>59<span class="cite-bracket">&#93;</span></a></sup> </p><p>Lateral gene transfer via a mobile genetic element, namely the integrated conjugative element (ICE) <i>Bs1</i> has been reported for its role in the global DNA damage SOS response of the gram positive <i>Bacillus subtilis</i>.<sup id="cite_ref-60" class="reference"><a href="#cite_note-60"><span class="cite-bracket">&#91;</span>60<span class="cite-bracket">&#93;</span></a></sup> Furthermore, it has been linked with the radiation and desiccation resistance of <i>Bacillus pumilus</i> SAFR-032 spores,<sup id="cite_ref-61" class="reference"><a href="#cite_note-61"><span class="cite-bracket">&#91;</span>61<span class="cite-bracket">&#93;</span></a></sup> isolated from spacecraft cleanroom facilities.<sup id="cite_ref-62" class="reference"><a href="#cite_note-62"><span class="cite-bracket">&#91;</span>62<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-63" class="reference"><a href="#cite_note-63"><span class="cite-bracket">&#91;</span>63<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-64" class="reference"><a href="#cite_note-64"><span class="cite-bracket">&#91;</span>64<span class="cite-bracket">&#93;</span></a></sup> </p><p>Transposon insertion elements have been reported to increase the fitness of gram-negative <i><a href="/wiki/Escherichia_coli" title="Escherichia coli">E. coli</a></i> strains through either major transpositions or genome rearrangements, and increasing mutation rates.<sup id="cite_ref-65" class="reference"><a href="#cite_note-65"><span class="cite-bracket">&#91;</span>65<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-66" class="reference"><a href="#cite_note-66"><span class="cite-bracket">&#91;</span>66<span class="cite-bracket">&#93;</span></a></sup> In a study on the effects of long-term exposure of simulated microgravity on non-pathogenic <i>E. coli</i>, the results showed transposon insertions occur at loci, linked to SOS stress response.<sup id="cite_ref-67" class="reference"><a href="#cite_note-67"><span class="cite-bracket">&#91;</span>67<span class="cite-bracket">&#93;</span></a></sup> When the same <i>E. coli</i> strain was exposed to a combination of simulated microgravity and trace (background) levels of (the broad spectrum) antibiotic (<a href="/wiki/Chloramphenicol" title="Chloramphenicol">chloramphenicol</a>), the results showed transposon-mediated rearrangements (TMRs), disrupting genes involved in bacterial adhesion, and deleting an entire segment of several genes involved with motility and <a href="/wiki/Chemotaxis" title="Chemotaxis">chemotaxis</a>.<sup id="cite_ref-68" class="reference"><a href="#cite_note-68"><span class="cite-bracket">&#91;</span>68<span class="cite-bracket">&#93;</span></a></sup> Both these studies have implications for microbial growth, adaptation to and antibiotic resistance in real time space conditions. </p><p>Horizontal gene transfer is particularly active in bacterial genomes around the production of secondary or specialized metabolites.<sup id="cite_ref-Ginolhac_2005_69-0" class="reference"><a href="#cite_note-Ginolhac_2005-69"><span class="cite-bracket">&#91;</span>69<span class="cite-bracket">&#93;</span></a></sup> This is clearly exhibited within certain groups of bacteria including <i>P. aeruginosa</i> and <i>actinomycetales</i>, an order of <i>Actinomycetota.</i><sup id="cite_ref-70" class="reference"><a href="#cite_note-70"><span class="cite-bracket">&#91;</span>70<span class="cite-bracket">&#93;</span></a></sup> <span class="citation-needed-content" style="padding-left:0.1em; padding-right:0.1em; color:var(--color-subtle, #54595d); border:1px solid var(--border-color-subtle, #c8ccd1);"><a href="/wiki/Polyketide_synthase" title="Polyketide synthase">Polyketide synthases</a> (PKSs) and <a href="/wiki/Metabolic_gene_cluster" title="Metabolic gene cluster">biosynthetic gene clusters</a> provide modular organizations of associated genes making these bacteria well-adapted to acquire and discard helpful modular modifications via HGT.</span><sup class="noprint Inline-Template Template-Fact" style="margin-left:0.1em; white-space:nowrap;">&#91;<i><a href="/wiki/Wikipedia:Citation_needed" title="Wikipedia:Citation needed"><span title="This claim needs references to reliable sources. (February 2023)">citation needed</span></a></i>&#93;</sup> Certain areas of genes known as <a href="/wiki/Recombination_hotspot" title="Recombination hotspot">hotspots</a> further increase the likelihood of horizontally transferred secondary metabolite-producing genes.<sup id="cite_ref-Gross_2009_71-0" class="reference"><a href="#cite_note-Gross_2009-71"><span class="cite-bracket">&#91;</span>71<span class="cite-bracket">&#93;</span></a></sup> <span class="citation-needed-content" style="padding-left:0.1em; padding-right:0.1em; color:var(--color-subtle, #54595d); border:1px solid var(--border-color-subtle, #c8ccd1);">The promiscuity of enzymes is a reoccurring theme in this particular theatre.</span><sup class="noprint Inline-Template Template-Fact" style="margin-left:0.1em; white-space:nowrap;">&#91;<i><a href="/wiki/Wikipedia:Citation_needed" title="Wikipedia:Citation needed"><span title="This claim needs references to reliable sources. (February 2023)">citation needed</span></a></i>&#93;</sup> </p> <div class="mw-heading mw-heading3"><h3 id="Bacterial_transformation">Bacterial transformation</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=7" title="Edit section: Bacterial transformation"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <figure class="mw-default-size" typeof="mw:File/Thumb"><a href="/wiki/File:Transformation_HGT_in_Bacteria.svg" class="mw-file-description"><img src="//upload.wikimedia.org/wikipedia/commons/thumb/2/26/Transformation_HGT_in_Bacteria.svg/220px-Transformation_HGT_in_Bacteria.svg.png" decoding="async" width="220" height="264" class="mw-file-element" srcset="//upload.wikimedia.org/wikipedia/commons/thumb/2/26/Transformation_HGT_in_Bacteria.svg/330px-Transformation_HGT_in_Bacteria.svg.png 1.5x, //upload.wikimedia.org/wikipedia/commons/thumb/2/26/Transformation_HGT_in_Bacteria.svg/440px-Transformation_HGT_in_Bacteria.svg.png 2x" data-file-width="512" data-file-height="615" /></a><figcaption>1: Donor bacterium 2: Bacterium who will receive the gene 3: The red portion represents the gene that will be transferred. Transformation in bacteria happens in a certain environment.</figcaption></figure> <p><a href="/wiki/Transformation_(genetics)" class="mw-redirect" title="Transformation (genetics)">Natural transformation</a> is a bacterial adaptation for DNA transfer (HGT) that depends on the expression of numerous bacterial genes whose products are responsible for this process.<sup id="cite_ref-Chen_2004_72-0" class="reference"><a href="#cite_note-Chen_2004-72"><span class="cite-bracket">&#91;</span>72<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Johnsborg_2007_73-0" class="reference"><a href="#cite_note-Johnsborg_2007-73"><span class="cite-bracket">&#91;</span>73<span class="cite-bracket">&#93;</span></a></sup> In general, transformation is a complex, energy-requiring developmental process. In order for a bacterium to bind, take up and recombine exogenous DNA into its chromosome, it must become <a href="/wiki/Natural_competence" title="Natural competence">competent</a>, that is, enter a special physiological state. Competence development in <i><a href="/wiki/Bacillus_subtilis" title="Bacillus subtilis">Bacillus subtilis</a></i> requires expression of about 40 genes.<sup id="cite_ref-Solomon_1996_74-0" class="reference"><a href="#cite_note-Solomon_1996-74"><span class="cite-bracket">&#91;</span>74<span class="cite-bracket">&#93;</span></a></sup> The DNA integrated into the host chromosome is usually (but with infrequent exceptions) derived from another bacterium of the same <a href="/wiki/Species" title="Species">species</a>, and is thus homologous to the resident chromosome. The capacity for natural transformation occurs in at least 67 prokaryotic species.<sup id="cite_ref-Johnsborg_2007_73-1" class="reference"><a href="#cite_note-Johnsborg_2007-73"><span class="cite-bracket">&#91;</span>73<span class="cite-bracket">&#93;</span></a></sup> <a href="/wiki/Natural_competence" title="Natural competence">Competence</a> for transformation is typically induced by high cell density and/or nutritional limitation, conditions associated with the <a href="/wiki/Bacterial_growth#Phases" title="Bacterial growth">stationary phase</a> of bacterial growth. Competence appears to be an adaptation for DNA repair.<sup id="cite_ref-75" class="reference"><a href="#cite_note-75"><span class="cite-bracket">&#91;</span>75<span class="cite-bracket">&#93;</span></a></sup> Transformation in bacteria can be viewed as a primitive sexual process, since it involves interaction of homologous DNA from two individuals to form recombinant DNA that is passed on to succeeding generations. Although transduction is the form of HGT most commonly associated with <a href="/wiki/Bacteriophage" title="Bacteriophage">bacteriophages</a>, certain phages may also be able to promote transformation.<sup id="cite_ref-Keen_2017_76-0" class="reference"><a href="#cite_note-Keen_2017-76"><span class="cite-bracket">&#91;</span>76<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading3"><h3 id="Bacterial_conjugation">Bacterial conjugation</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=8" title="Edit section: Bacterial conjugation"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <figure class="mw-default-size" typeof="mw:File/Thumb"><a href="/wiki/File:Conjugation_HGT_in_Bacteria.svg" class="mw-file-description"><img src="//upload.wikimedia.org/wikipedia/commons/thumb/d/d9/Conjugation_HGT_in_Bacteria.svg/220px-Conjugation_HGT_in_Bacteria.svg.png" decoding="async" width="220" height="245" class="mw-file-element" srcset="//upload.wikimedia.org/wikipedia/commons/thumb/d/d9/Conjugation_HGT_in_Bacteria.svg/330px-Conjugation_HGT_in_Bacteria.svg.png 1.5x, //upload.wikimedia.org/wikipedia/commons/thumb/d/d9/Conjugation_HGT_in_Bacteria.svg/440px-Conjugation_HGT_in_Bacteria.svg.png 2x" data-file-width="512" data-file-height="571" /></a><figcaption>1: Donor bacterium cell (F+ cell) 2: Bacterium that receives the plasmid (F- cell) 3: Plasmid that will be moved to the other bacterium 4: Pilus and T4SS. Conjugation in bacteria using a sex pilus; then the bacterium that received the plasmid can go give it to other bacteria as well.</figcaption></figure> <figure class="mw-default-size" typeof="mw:File/Thumb"><a href="/wiki/File:Bacterial_conjugation.png" class="mw-file-description"><img src="//upload.wikimedia.org/wikipedia/commons/thumb/a/a3/Bacterial_conjugation.png/220px-Bacterial_conjugation.png" decoding="async" width="220" height="156" class="mw-file-element" srcset="//upload.wikimedia.org/wikipedia/commons/thumb/a/a3/Bacterial_conjugation.png/330px-Bacterial_conjugation.png 1.5x, //upload.wikimedia.org/wikipedia/commons/thumb/a/a3/Bacterial_conjugation.png/440px-Bacterial_conjugation.png 2x" data-file-width="2809" data-file-height="1989" /></a><figcaption><i>E. coli</i> cells going through conjugation and sharing genetic information. F-pilus is reaching towards other cell.</figcaption></figure> <p>As mentioned before, <a href="/wiki/Bacterial_conjugation" title="Bacterial conjugation">conjugation</a> is a method of horizontal gene transfer through cell to cell contact.<sup id="cite_ref-Stearns_2005_43-5" class="reference"><a href="#cite_note-Stearns_2005-43"><span class="cite-bracket">&#91;</span>43<span class="cite-bracket">&#93;</span></a></sup> Through the process of conjugation, <a href="/wiki/Type_IV_secretion_system" title="Type IV secretion system">type IV Secretion Systems</a> (T4SS) are used to passage on DNA from the donor cell to the recipient cell.<sup id="cite_ref-77" class="reference"><a href="#cite_note-77"><span class="cite-bracket">&#91;</span>77<span class="cite-bracket">&#93;</span></a></sup> These T4SS encoded within the plasmid carry other proteins and genes that help supplement the cell in conjugation. Research has shown that there are Single Binding DNA Binding proteins (SSBs) also encoded within the conjugative plasmid may help with conjugation and cell viability.<sup id="cite_ref-78" class="reference"><a href="#cite_note-78"><span class="cite-bracket">&#91;</span>78<span class="cite-bracket">&#93;</span></a></sup> This is thought to be the case because SSBs naturally are expressed to help with stabilizing single-stranded DNA (ssDNA).<sup id="cite_ref-79" class="reference"><a href="#cite_note-79"><span class="cite-bracket">&#91;</span>79<span class="cite-bracket">&#93;</span></a></sup> SSBs will also recruit other proteins like RadD or RecA expressed in events of DNA recombination, repair, and replication.<sup id="cite_ref-80" class="reference"><a href="#cite_note-80"><span class="cite-bracket">&#91;</span>80<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-81" class="reference"><a href="#cite_note-81"><span class="cite-bracket">&#91;</span>81<span class="cite-bracket">&#93;</span></a></sup> Further showcasing their possible role in conjugation. Although it may help, studies have also shown for proteins like SSB to not be essential in conjugation. For example, the plasmid pCF10 from <i>Enterococcus faecalis</i>, a gram-positive bacterium, has a SSB like-protein called PrgE and was classified for not being required for conjugation.<sup id="cite_ref-82" class="reference"><a href="#cite_note-82"><span class="cite-bracket">&#91;</span>82<span class="cite-bracket">&#93;</span></a></sup> More work needs to be done on why proteins that bind to ssDNA are encoded into conjugative plasmids. </p><p>Conjugation in the case of microbiomes and symbioses is very important. From this process new genes are acquired that lead to increasing genetic diversity and evolution such as the acquisition of antibiotic resistance genes. <i>Mycobacterium tuberculosis</i> is a species that has evolved through methods like conjugation while gaining antibiotic resistance.<sup id="cite_ref-83" class="reference"><a href="#cite_note-83"><span class="cite-bracket">&#91;</span>83<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-84" class="reference"><a href="#cite_note-84"><span class="cite-bracket">&#91;</span>84<span class="cite-bracket">&#93;</span></a></sup> This evolution or increase in genetic diversity is also seen in many other species.<sup id="cite_ref-85" class="reference"><a href="#cite_note-85"><span class="cite-bracket">&#91;</span>85<span class="cite-bracket">&#93;</span></a></sup> Due to this, there is a huge concern on how impactful conjugation or horizontal gene transfer can be on human health and your microbiome as pathogenic microbes can become more pathogenic. Studies have shown that even our own microbiome has a plethora of antimicrobial genes which if transferred to pathogenic microbes could be detrimental.<sup id="cite_ref-86" class="reference"><a href="#cite_note-86"><span class="cite-bracket">&#91;</span>86<span class="cite-bracket">&#93;</span></a></sup> </p><p><a href="/wiki/Bacterial_conjugation" title="Bacterial conjugation">Conjugation</a> in <i><a href="/wiki/Mycobacterium_smegmatis" title="Mycobacterium smegmatis">Mycobacterium smegmatis</a></i>, like conjugation in <i><a href="/wiki/Escherichia_coli" title="Escherichia coli">E. coli</a></i>, requires stable and extended contact between a donor and a recipient strain, is <a href="/wiki/Deoxyribonuclease" title="Deoxyribonuclease">DNase resistant</a>, and the transferred DNA is incorporated into the recipient chromosome by <a href="/wiki/Homologous_recombination" title="Homologous recombination">homologous recombination</a>. However, unlike <i>E. coli</i> <a href="/wiki/Bacterial_conjugation#Mechanism" title="Bacterial conjugation">high frequency of recombination conjugation</a> (Hfr), mycobacterial conjugation is a type of HGT that is chromosome rather than plasmid based.<sup id="cite_ref-Gray_2013_87-0" class="reference"><a href="#cite_note-Gray_2013-87"><span class="cite-bracket">&#91;</span>87<span class="cite-bracket">&#93;</span></a></sup> Furthermore, in contrast to <i>E. coli</i> (Hfr) conjugation, in <i>M. smegmatis</i> all regions of the chromosome are transferred with comparable efficiencies. Substantial blending of the parental genomes was found as a result of conjugation, and this blending was regarded as reminiscent of that seen in the meiotic products of sexual reproduction.<sup id="cite_ref-Gray_2013_87-1" class="reference"><a href="#cite_note-Gray_2013-87"><span class="cite-bracket">&#91;</span>87<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Derbyshire_2014_88-0" class="reference"><a href="#cite_note-Derbyshire_2014-88"><span class="cite-bracket">&#91;</span>88<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading3"><h3 id="Archaeal_DNA_transfer">Archaeal DNA transfer</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=9" title="Edit section: Archaeal DNA transfer"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p><a href="/wiki/Haloarchaea" title="Haloarchaea">Haloarchaea</a> are aerobic <a href="/wiki/Halophile" title="Halophile">halophiles</a> thought to have evolved from anaerobic <a href="/wiki/Methanogen" title="Methanogen">methanogens</a>. A large amount of their genome, 126 composite gene families, are derived from genetic material from bacterial genomes. This has allowed them to adapt to extremely salty environments.<sup id="cite_ref-89" class="reference"><a href="#cite_note-89"><span class="cite-bracket">&#91;</span>89<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-90" class="reference"><a href="#cite_note-90"><span class="cite-bracket">&#91;</span>90<span class="cite-bracket">&#93;</span></a></sup> </p><p>The <a href="/wiki/Archaea" title="Archaea">archaeon</a> <i><a href="/wiki/Sulfolobus_solfataricus" title="Sulfolobus solfataricus">Sulfolobus solfataricus</a></i>, when <a href="/wiki/Ultraviolet" title="Ultraviolet">UV</a> irradiated, strongly induces the formation of <a href="/wiki/Pilus#Type_IV_pili" title="Pilus">type IV pili</a> which then facilitates cellular aggregation.<sup id="cite_ref-Fröls_2008_91-0" class="reference"><a href="#cite_note-Fröls_2008-91"><span class="cite-bracket">&#91;</span>91<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Allers_2011_92-0" class="reference"><a href="#cite_note-Allers_2011-92"><span class="cite-bracket">&#91;</span>92<span class="cite-bracket">&#93;</span></a></sup> Exposure to chemical agents that cause DNA damage also induces cellular aggregation.<sup id="cite_ref-Fröls_2008_91-1" class="reference"><a href="#cite_note-Fröls_2008-91"><span class="cite-bracket">&#91;</span>91<span class="cite-bracket">&#93;</span></a></sup> Other physical stressors, such as temperature shift or pH, do not induce aggregation, suggesting that DNA damage is a specific inducer of cellular aggregation.<sup class="noprint Inline-Template Template-Fact" style="white-space:nowrap;">&#91;<i><a href="/wiki/Wikipedia:Citation_needed" title="Wikipedia:Citation needed"><span title="This claim needs references to reliable sources. (February 2023)">citation needed</span></a></i>&#93;</sup> </p><p>UV-induced cellular aggregation mediates intercellular chromosomal HGT marker exchange with high frequency,<sup id="cite_ref-Ajon_2011_93-0" class="reference"><a href="#cite_note-Ajon_2011-93"><span class="cite-bracket">&#91;</span>93<span class="cite-bracket">&#93;</span></a></sup> and UV-induced cultures display recombination rates that exceed those of uninduced cultures by as much as three orders of magnitude. <i>S. solfataricus</i> cells aggregate preferentially with other cells of their own species.<sup id="cite_ref-Ajon_2011_93-1" class="reference"><a href="#cite_note-Ajon_2011-93"><span class="cite-bracket">&#91;</span>93<span class="cite-bracket">&#93;</span></a></sup> Frols et al.<sup id="cite_ref-Fröls_2008_91-2" class="reference"><a href="#cite_note-Fröls_2008-91"><span class="cite-bracket">&#91;</span>91<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-pmid19143598_94-0" class="reference"><a href="#cite_note-pmid19143598-94"><span class="cite-bracket">&#91;</span>94<span class="cite-bracket">&#93;</span></a></sup> and Ajon et al.<sup id="cite_ref-Ajon_2011_93-2" class="reference"><a href="#cite_note-Ajon_2011-93"><span class="cite-bracket">&#91;</span>93<span class="cite-bracket">&#93;</span></a></sup> suggested that UV-inducible DNA transfer is likely an important mechanism for providing increased repair of damaged DNA via homologous recombination. This process can be regarded as a simple form of sexual interaction. </p><p>Another <a href="/wiki/Thermophile" title="Thermophile">thermophilic species</a>, <i><a href="/wiki/Sulfolobus_acidocaldarius" title="Sulfolobus acidocaldarius">Sulfolobus acidocaldarius</a></i>, is able to undergo HGT. <i>S. acidocaldarius</i> can exchange and recombine chromosomal markers at temperatures up to 84&#160;°C.<sup id="cite_ref-Grogan_1996_95-0" class="reference"><a href="#cite_note-Grogan_1996-95"><span class="cite-bracket">&#91;</span>95<span class="cite-bracket">&#93;</span></a></sup> UV exposure induces pili formation and cellular aggregation.<sup id="cite_ref-Ajon_2011_93-3" class="reference"><a href="#cite_note-Ajon_2011-93"><span class="cite-bracket">&#91;</span>93<span class="cite-bracket">&#93;</span></a></sup> Cells with the ability to aggregate have greater survival than mutants lacking pili that are unable to aggregate. The frequency of recombination is increased by DNA damage induced by UV-irradiation<sup id="cite_ref-Wood_1997_96-0" class="reference"><a href="#cite_note-Wood_1997-96"><span class="cite-bracket">&#91;</span>96<span class="cite-bracket">&#93;</span></a></sup> and by DNA damaging chemicals.<sup id="cite_ref-Reilly_2002_97-0" class="reference"><a href="#cite_note-Reilly_2002-97"><span class="cite-bracket">&#91;</span>97<span class="cite-bracket">&#93;</span></a></sup> </p><p>The <a href="/wiki/Sulfolobales#The_ups_operon" title="Sulfolobales"><i>ups</i> operon</a>, containing five genes, is highly induced by UV irradiation. The proteins encoded by the <i>ups</i> operon are employed in UV-induced pili assembly and cellular aggregation leading to intercellular DNA exchange and <a href="/wiki/Homologous_recombination" title="Homologous recombination">homologous recombination</a>.<sup id="cite_ref-Wolferen_2013_98-0" class="reference"><a href="#cite_note-Wolferen_2013-98"><span class="cite-bracket">&#91;</span>98<span class="cite-bracket">&#93;</span></a></sup> Since this system increases the fitness of <i>S. acidocaldarius</i> cells after UV exposure, Wolferen et al.<sup id="cite_ref-Wolferen_2013_98-1" class="reference"><a href="#cite_note-Wolferen_2013-98"><span class="cite-bracket">&#91;</span>98<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-van_Wolferen_2015_99-0" class="reference"><a href="#cite_note-van_Wolferen_2015-99"><span class="cite-bracket">&#91;</span>99<span class="cite-bracket">&#93;</span></a></sup> considered that transfer of DNA likely takes place in order to repair UV-induced DNA damages by homologous recombination. </p> <div class="mw-heading mw-heading2"><h2 id="Eukaryotes">Eukaryotes</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=10" title="Edit section: Eukaryotes"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p>"Sequence comparisons suggest recent horizontal transfer of many genes among diverse species including across the boundaries of <a href="/wiki/Phylogenetic" class="mw-redirect" title="Phylogenetic">phylogenetic</a> 'domains'. Thus determining the phylogenetic history of a species can not be done conclusively by determining evolutionary trees for single genes."<sup id="cite_ref-100" class="reference"><a href="#cite_note-100"><span class="cite-bracket">&#91;</span>100<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading3"><h3 id="Organelle_to_nuclear_genome">Organelle to nuclear genome</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=11" title="Edit section: Organelle to nuclear genome"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>Analysis of <a href="/wiki/DNA_sequence" class="mw-redirect" title="DNA sequence">DNA sequences</a> suggests that horizontal gene transfer has occurred within eukaryotes from the chloroplast and <a href="/wiki/Mitochondrial_genome" class="mw-redirect" title="Mitochondrial genome">mitochondrial genomes</a> to the <a href="/wiki/Nuclear_genome" class="mw-redirect" title="Nuclear genome">nuclear genome</a>. As stated in the <a href="/wiki/Endosymbiotic_theory" class="mw-redirect" title="Endosymbiotic theory">endosymbiotic theory</a>, <a href="/wiki/Chloroplast" title="Chloroplast">chloroplasts</a> and <a href="/wiki/Mitochondria" class="mw-redirect" title="Mitochondria">mitochondria</a> probably originated as bacterial <a href="/wiki/Endosymbiont" title="Endosymbiont">endosymbionts</a> of a progenitor to the eukaryotic cell.<sup id="cite_ref-101" class="reference"><a href="#cite_note-101"><span class="cite-bracket">&#91;</span>101<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Organelle_to_organelle">Organelle to organelle</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=12" title="Edit section: Organelle to organelle"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li><a href="/wiki/Mitochondrial_gene" class="mw-redirect" title="Mitochondrial gene">Mitochondrial genes</a> moved to parasites of the <a href="/wiki/Rafflesiaceae" title="Rafflesiaceae">Rafflesiaceae</a> plant family from their hosts<sup id="cite_ref-102" class="reference"><a href="#cite_note-102"><span class="cite-bracket">&#91;</span>102<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-103" class="reference"><a href="#cite_note-103"><span class="cite-bracket">&#91;</span>103<span class="cite-bracket">&#93;</span></a></sup> and from chloroplasts of a still-unidentified plant to the mitochondria of the bean <i><a href="/wiki/Phaseolus" title="Phaseolus">Phaseolus</a></i>.<sup id="cite_ref-104" class="reference"><a href="#cite_note-104"><span class="cite-bracket">&#91;</span>104<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Bacteria_to_fungi">Bacteria to fungi</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=13" title="Edit section: Bacteria to fungi"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>Horizontal transfer occurs from bacteria to some <a href="/wiki/Fungi" class="mw-redirect" title="Fungi">fungi</a>, such as the yeast <i><a href="/wiki/Saccharomyces_cerevisiae" title="Saccharomyces cerevisiae">Saccharomyces cerevisiae</a></i>.<sup id="cite_ref-105" class="reference"><a href="#cite_note-105"><span class="cite-bracket">&#91;</span>105<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Bacteria_to_plants">Bacteria to plants</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=14" title="Edit section: Bacteria to plants"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>Agrobacterium, a pathogenic bacterium that causes cells to proliferate as crown galls and proliferating roots is an example of a bacterium that can transfer genes to plants and this plays an important role in plant evolution.<sup id="cite_ref-106" class="reference"><a href="#cite_note-106"><span class="cite-bracket">&#91;</span>106<span class="cite-bracket">&#93;</span></a></sup></li> <li>Land plants and their close relatives, the charophycean green algae, share a set of glycosyl hydrolases. These enzymes were likely transferred from bacteria and fungi to the last common ancestor of these organisms before the origin of land plants.<sup id="cite_ref-107" class="reference"><a href="#cite_note-107"><span class="cite-bracket">&#91;</span>107<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Bacteria_to_animals">Bacteria to animals</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=15" title="Edit section: Bacteria to animals"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li><a href="/wiki/HhMAN1" title="HhMAN1">HhMAN1</a> is a gene in the genome of the coffee berry borer (<i><a href="/wiki/Hypothenemus_hampei" title="Hypothenemus hampei">Hypothenemus hampei</a></i>) that resembles bacterial genes, and is thought to be transferred from bacteria in the beetle's gut.<sup id="cite_ref-108" class="reference"><a href="#cite_note-108"><span class="cite-bracket">&#91;</span>108<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-109" class="reference"><a href="#cite_note-109"><span class="cite-bracket">&#91;</span>109<span class="cite-bracket">&#93;</span></a></sup></li> <li><a href="/wiki/Oskar_(gene)" title="Oskar (gene)">oskar</a> is an essential gene for the specification of the germline in <a href="/wiki/Holometabola" title="Holometabola">Holometabola</a> and its origin is through to be due to a HGT event followed by a fusion with a LOTUS domain.<sup id="cite_ref-110" class="reference"><a href="#cite_note-110"><span class="cite-bracket">&#91;</span>110<span class="cite-bracket">&#93;</span></a></sup></li> <li><a href="/wiki/Bdelloid_rotifer" class="mw-redirect" title="Bdelloid rotifer">Bdelloid rotifers</a> currently hold the 'record' for HGT in animals with ~8% of their genes from bacterial origins.<sup id="cite_ref-111" class="reference"><a href="#cite_note-111"><span class="cite-bracket">&#91;</span>111<span class="cite-bracket">&#93;</span></a></sup> <a href="/wiki/Tardigrade" title="Tardigrade">Tardigrades</a> were thought to break the record with 17.5% HGT, but that finding was an artifact of bacterial contamination.<sup id="cite_ref-Koutsovoulos_2016_112-0" class="reference"><a href="#cite_note-Koutsovoulos_2016-112"><span class="cite-bracket">&#91;</span>112<span class="cite-bracket">&#93;</span></a></sup></li> <li>A study found the genomes of 40 animals (including 10 primates, four <i><a href="/wiki/Caenorhabditis" title="Caenorhabditis">Caenorhabditis</a></i> worms, and 12 <i><a href="/wiki/Drosophila" title="Drosophila">Drosophila</a></i> insects) contained genes which the researchers concluded had been transferred from bacteria and fungi by horizontal gene transfer.<sup id="cite_ref-113" class="reference"><a href="#cite_note-113"><span class="cite-bracket">&#91;</span>113<span class="cite-bracket">&#93;</span></a></sup> The researchers estimated that for some nematodes and Drosophila insects these genes had been acquired relatively recently.<sup id="cite_ref-114" class="reference"><a href="#cite_note-114"><span class="cite-bracket">&#91;</span>114<span class="cite-bracket">&#93;</span></a></sup></li> <li>A bacteriophage-mediated mechanism transfers genes between prokaryotes and eukaryotes.<sup id="cite_ref-115" class="reference"><a href="#cite_note-115"><span class="cite-bracket">&#91;</span>115<span class="cite-bracket">&#93;</span></a></sup> Nuclear localization signals in bacteriophage terminal proteins (TP) prime DNA replication and become covalently linked to the viral genome. The role of virus and bacteriophages in HGT in bacteria, suggests that TP-containing genomes could be a vehicle of inter-kingdom genetic information transference all throughout evolution.<sup id="cite_ref-116" class="reference"><a href="#cite_note-116"><span class="cite-bracket">&#91;</span>116<span class="cite-bracket">&#93;</span></a></sup></li> <li>The <a href="/wiki/Callosobruchus_chinensis" title="Callosobruchus chinensis">adzuki bean beetle</a> has acquired genetic material from its (non-beneficial) endosymbiont <i><a href="/wiki/Wolbachia" title="Wolbachia">Wolbachia</a></i>.<sup id="cite_ref-117" class="reference"><a href="#cite_note-117"><span class="cite-bracket">&#91;</span>117<span class="cite-bracket">&#93;</span></a></sup> New examples have recently been reported demonstrating that Wolbachia bacteria represent an important potential source of genetic material in arthropods and <a href="/wiki/Filarial_nematodes" class="mw-redirect" title="Filarial nematodes">filarial</a> <a href="/wiki/Nematode" title="Nematode">nematodes</a>.<sup id="cite_ref-118" class="reference"><a href="#cite_note-118"><span class="cite-bracket">&#91;</span>118<span class="cite-bracket">&#93;</span></a></sup></li> <li>The psyllid <i>Pachypsylla venusta</i> has acquired genes from its current endosymbiont <i>Carsonella</i>, and from many of its historical endosymbionts, too.<sup id="cite_ref-119" class="reference"><a href="#cite_note-119"><span class="cite-bracket">&#91;</span>119<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Plant_to_plant">Plant to plant</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=16" title="Edit section: Plant to plant"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li><i><a href="/wiki/Striga_hermonthica" title="Striga hermonthica">Striga hermonthica</a></i>, a <a href="/wiki/Parasitic" class="mw-redirect" title="Parasitic">parasitic</a> <a href="/wiki/Eudicot" class="mw-redirect" title="Eudicot">eudicot</a>, has received a gene from <a href="/wiki/Sorghum" title="Sorghum">sorghum</a> (<i><a href="/wiki/Sorghum_bicolor" class="mw-redirect" title="Sorghum bicolor">Sorghum bicolor</a></i>) to its nuclear genome.<sup id="cite_ref-Yoshida_2010_120-0" class="reference"><a href="#cite_note-Yoshida_2010-120"><span class="cite-bracket">&#91;</span>120<span class="cite-bracket">&#93;</span></a></sup> The gene's functionality is unknown.</li> <li>A gene that allowed ferns to survive in dark forests came from the <a href="/wiki/Hornwort" title="Hornwort">hornwort</a>, which grows in mats on streambanks or trees. The neochrome gene arrived about 180 million years ago.<sup id="cite_ref-121" class="reference"><a href="#cite_note-121"><span class="cite-bracket">&#91;</span>121<span class="cite-bracket">&#93;</span></a></sup></li> <li>Transfer of mRNA between host plants and heterotrophs plants in the <a href="/wiki/Orobanchaceae" title="Orobanchaceae">Orobanchaceae</a> have been directly observed. mRNA transcripts can therefore be a factor involved in the transfer and integration of foreign DNA in heterotrophs.<sup id="cite_ref-122" class="reference"><a href="#cite_note-122"><span class="cite-bracket">&#91;</span>122<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Plants_to_animals">Plants to animals</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=17" title="Edit section: Plants to animals"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>The eastern emerald sea slug <i><a href="/wiki/Elysia_chlorotica" title="Elysia chlorotica">Elysia chlorotica</a></i> has been suggested by <a href="/wiki/Fluorescence_in_situ_hybridization" title="Fluorescence in situ hybridization">fluorescence in situ hybridization</a> (FISH) analysis to contain photosynthesis-supporting genes obtained from an algae (<i><a href="/wiki/Vaucheria_litorea" title="Vaucheria litorea">Vaucheria litorea</a>)</i> in their diet.<sup id="cite_ref-123" class="reference"><a href="#cite_note-123"><span class="cite-bracket">&#91;</span>123<span class="cite-bracket">&#93;</span></a></sup> LGT in Sacoglossa is now thought to be an artifact<sup id="cite_ref-124" class="reference"><a href="#cite_note-124"><span class="cite-bracket">&#91;</span>124<span class="cite-bracket">&#93;</span></a></sup> and no trace of LGT was found upon sequencing the genome of <i><a href="/wiki/Elysia_chlorotica" title="Elysia chlorotica">Elysia chlorotica</a></i>.<sup id="cite_ref-125" class="reference"><a href="#cite_note-125"><span class="cite-bracket">&#91;</span>125<span class="cite-bracket">&#93;</span></a></sup></li> <li>The whitefly <i><a href="/wiki/Bemisia_tabaci" class="mw-redirect" title="Bemisia tabaci">Bemisia tabaci</a></i> acquired a plant detoxification gene that neutralizes plant toxins.<sup id="cite_ref-126" class="reference"><a href="#cite_note-126"><span class="cite-bracket">&#91;</span>126<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Plant_to_fungus">Plant to fungus</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=18" title="Edit section: Plant to fungus"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1236090951"><div role="note" class="hatnote navigation-not-searchable">Main article: <a href="/wiki/Plant-fungus_horizontal_gene_transfer" class="mw-redirect" title="Plant-fungus horizontal gene transfer">Plant-fungus horizontal gene transfer</a></div> <ul><li>Gene transfer between plants and fungi has been posited for a number of cases, including rice (<i><a href="/wiki/Oryza_sativa" title="Oryza sativa">Oryza sativa</a></i>).<sup class="noprint Inline-Template Template-Fact" style="white-space:nowrap;">&#91;<i><a href="/wiki/Wikipedia:Citation_needed" title="Wikipedia:Citation needed"><span title="This claim needs references to reliable sources. (February 2023)">citation needed</span></a></i>&#93;</sup></li> <li>Evidence of gene transfer from plants was documented in the fungus <i>Colletotrichum.</i><sup id="cite_ref-Armijos_Jaramillo_2013_127-0" class="reference"><a href="#cite_note-Armijos_Jaramillo_2013-127"><span class="cite-bracket">&#91;</span>127<span class="cite-bracket">&#93;</span></a></sup></li> <li>Plant expansin genes were transferred to fungi further enabling the fungi to infect plants.<sup id="cite_ref-Nikolaidis_2014_128-0" class="reference"><a href="#cite_note-Nikolaidis_2014-128"><span class="cite-bracket">&#91;</span>128<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Plant_to_bacteria">Plant to bacteria</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=19" title="Edit section: Plant to bacteria"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>Plant expansin genes were transferred to bacteria further enabling the bacteria to infect plants.<sup id="cite_ref-Nikolaidis_2014_128-1" class="reference"><a href="#cite_note-Nikolaidis_2014-128"><span class="cite-bracket">&#91;</span>128<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Fungi_to_insects">Fungi to insects</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=20" title="Edit section: Fungi to insects"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>Pea aphids (<i><a href="/wiki/Acyrthosiphon_pisum" title="Acyrthosiphon pisum">Acyrthosiphon pisum</a></i>) contain multiple genes from <a href="/wiki/Fungus" title="Fungus">fungi</a>.<sup id="cite_ref-Moran_2010_129-0" class="reference"><a href="#cite_note-Moran_2010-129"><span class="cite-bracket">&#91;</span>129<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-130" class="reference"><a href="#cite_note-130"><span class="cite-bracket">&#91;</span>130<span class="cite-bracket">&#93;</span></a></sup> Plants, fungi, and microorganisms can synthesize <a href="/wiki/Carotenoid" title="Carotenoid">carotenoids</a>, but <a href="/wiki/Torulene" title="Torulene">torulene</a> made by pea <a href="/wiki/Aphid" title="Aphid">aphids</a> is the only carotenoid known to be synthesized by an organism in the animal kingdom.<sup id="cite_ref-Moran_2010_129-1" class="reference"><a href="#cite_note-Moran_2010-129"><span class="cite-bracket">&#91;</span>129<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Fungi_to_fungi">Fungi to fungi</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=21" title="Edit section: Fungi to fungi"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>The toxin <a href="/wiki/%CE%91-Amanitin" title="Α-Amanitin">α-amanitin</a> is found in numerous, seemingly unrelated genera fungi such as <i><a href="/wiki/Amanita" title="Amanita">Amanita</a></i>, <i><a href="/wiki/Lepiota" title="Lepiota">Lepiota</a></i>, and <i><a href="/wiki/Galerina" title="Galerina">Galerina</a></i>. Two biosynthetic genes involved in the production of α-amanitin are P450-29 and FMO1. Phylogenetic and genetic analyses of these genes strongly indicate that they were transferred between the genera via horizontal gene transfer.<sup id="cite_ref-131" class="reference"><a href="#cite_note-131"><span class="cite-bracket">&#91;</span>131<span class="cite-bracket">&#93;</span></a></sup></li> <li>The ToxA protein (wheat virulence protein) included in a ∼14 kb element, containing both coding and non-coding regions was transfered between different fungal wheat patogens: <i>Parastagonospora nodorum</i>, <i>Pyrenophora tritici-repentis</i>, and <i>Bipolaris sorokiniana</i>.<sup id="cite_ref-132" class="reference"><a href="#cite_note-132"><span class="cite-bracket">&#91;</span>132<span class="cite-bracket">&#93;</span></a></sup></li> <li>A large genomic element named "Wallaby," approximately 500 kb in length, was recently transferred between two Penicillium species used in cheesemaking: <i>P. camemberti</i> and <i>P. roqueforti</i>. Wallaby contains around 250 genes, including several that are thought to play a role in microbial competition.<sup id="cite_ref-133" class="reference"><a href="#cite_note-133"><span class="cite-bracket">&#91;</span>133<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Fungi_to_oomycetes">Fungi to oomycetes</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=22" title="Edit section: Fungi to oomycetes"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>4 genes from <i>Magnaporthe grisea</i>, the rice blast fungus, were suspected to be horizontally transferred from the genus <i>Phytophthora</i>, and hypothesized to play a role in the fungus evolution into a plant pathogen.<sup id="cite_ref-134" class="reference"><a href="#cite_note-134"><span class="cite-bracket">&#91;</span>134<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Oomycetes_to_fungi">Oomycetes to fungi</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=23" title="Edit section: Oomycetes to fungi"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>The oomycete species <i>Phytophthora ramorum</i>, <i>Phytophthora sojae</i>, <i>Phytophthora infestans</i>, and <i>Hyaloperonospora parasitica</i> were estimated to have 33 horizontal gene transfers from fungi. The transferred genes were hypothesized to be involved in functions that facilitate plant tissues colonization, such as secreted proteins to evade plant immune response and breaking down plant cell walls.<sup id="cite_ref-135" class="reference"><a href="#cite_note-135"><span class="cite-bracket">&#91;</span>135<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Animals_to_animals">Animals to animals</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=24" title="Edit section: Animals to animals"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li><a href="/wiki/Smelt_(fish)" title="Smelt (fish)">Smelt</a> fish received <a href="/wiki/Antifreeze_protein" title="Antifreeze protein">antifreeze protein</a> (AFP) gene from <a href="/wiki/Herring" title="Herring">herring</a> through a direct horizontal transfer.<sup id="cite_ref-136" class="reference"><a href="#cite_note-136"><span class="cite-bracket">&#91;</span>136<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Animals_to_bacteria">Animals to bacteria</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=25" title="Edit section: Animals to bacteria"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>The strikingly fish-like copper/zinc superoxide dismutase of <i><a href="/wiki/Photobacterium_leiognathi" title="Photobacterium leiognathi">Photobacterium leiognathi</a></i><sup id="cite_ref-137" class="reference"><a href="#cite_note-137"><span class="cite-bracket">&#91;</span>137<span class="cite-bracket">&#93;</span></a></sup> is most easily explained in terms of transfer of a gene from an ancestor of its fish host.</li></ul> <div class="mw-heading mw-heading3"><h3 id="Human_to_protozoan">Human to protozoan</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=26" title="Edit section: Human to protozoan"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>The <a href="/wiki/Malaria" title="Malaria">malaria</a> <a href="/wiki/Pathogen" title="Pathogen">pathogen</a> <i><a href="/wiki/Plasmodium_vivax" title="Plasmodium vivax">Plasmodium vivax</a></i> acquired genetic material from humans that might help facilitate its long stay in the body.<sup id="cite_ref-138" class="reference"><a href="#cite_note-138"><span class="cite-bracket">&#91;</span>138<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading3"><h3 id="Human_genome">Human genome</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=27" title="Edit section: Human genome"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <ul><li>One study identified approximately 100 of humans' approximately 20,000 total genes which likely resulted from horizontal gene transfer,<sup id="cite_ref-139" class="reference"><a href="#cite_note-139"><span class="cite-bracket">&#91;</span>139<span class="cite-bracket">&#93;</span></a></sup> but this number has been challenged by several researchers arguing these candidate genes for HGT are more likely the result of gene loss combined with differences in the rate of evolution.<sup class="noprint Inline-Template Template-Fact" style="white-space:nowrap;">&#91;<i><a href="/wiki/Wikipedia:Citation_needed" title="Wikipedia:Citation needed"><span title="See talk page (August 2024)">citation needed</span></a></i>&#93;</sup></li></ul> <div class="mw-heading mw-heading2"><h2 id="Compounds_found_to_promote_horizontal_gene_transfer">Compounds found to promote horizontal gene transfer</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=28" title="Edit section: Compounds found to promote horizontal gene transfer"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p>Through research into the growing issue of <a href="/wiki/Antimicrobial_resistance" title="Antimicrobial resistance">antibiotic resistance</a><sup id="cite_ref-140" class="reference"><a href="#cite_note-140"><span class="cite-bracket">&#91;</span>140<span class="cite-bracket">&#93;</span></a></sup> certain compounds have been observed to promote horizontal gene transfer.<sup id="cite_ref-Wang_2021_141-0" class="reference"><a href="#cite_note-Wang_2021-141"><span class="cite-bracket">&#91;</span>141<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Jiao_2017_142-0" class="reference"><a href="#cite_note-Jiao_2017-142"><span class="cite-bracket">&#91;</span>142<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Ma_2021_143-0" class="reference"><a href="#cite_note-Ma_2021-143"><span class="cite-bracket">&#91;</span>143<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Zhang_2018_144-0" class="reference"><a href="#cite_note-Zhang_2018-144"><span class="cite-bracket">&#91;</span>144<span class="cite-bracket">&#93;</span></a></sup> Antibiotics given to bacteria at non-lethal levels have been known to be a cause of antibiotic resistance<sup id="cite_ref-Zhang_2018_144-1" class="reference"><a href="#cite_note-Zhang_2018-144"><span class="cite-bracket">&#91;</span>144<span class="cite-bracket">&#93;</span></a></sup> but emerging research is now showing that certain non-antibiotic pharmaceuticals (<a href="/wiki/Ibuprofen" title="Ibuprofen">ibuprofen</a>, <a href="/wiki/Naproxen" title="Naproxen">naproxen</a>, <a href="/wiki/Gemfibrozil" title="Gemfibrozil">gemfibrozil</a>, <a href="/wiki/Diclofenac" title="Diclofenac">diclofenac</a>, <a href="/wiki/Propranolol" title="Propranolol">propranolol</a>, etc.) also have a role in promoting antibiotic resistance through their ability to promote horizontal gene transfer (HGT) of genes responsible for antibiotic resistance. The transfer of antibiotic resistance genes (ARGs) through <a href="/wiki/Bacterial_conjugation" title="Bacterial conjugation">conjugation</a> is significantly accelerated when donor cells with <a href="/wiki/Plasmid" title="Plasmid">plasmids</a> and recipient cells are introduced to each other in the presence of one of the pharmaceuticals.<sup id="cite_ref-Wang_2021_141-1" class="reference"><a href="#cite_note-Wang_2021-141"><span class="cite-bracket">&#91;</span>141<span class="cite-bracket">&#93;</span></a></sup> Non-antibiotic pharmaceuticals were also found to cause some responses in bacteria similar to those responses to antibiotics, such as increasing expression of the genes lexA, umuC, umuD and soxR involved in the bacteria's SOS response as well as other genes also expressed during exposure to antibiotics.<sup id="cite_ref-Wang_2021_141-2" class="reference"><a href="#cite_note-Wang_2021-141"><span class="cite-bracket">&#91;</span>141<span class="cite-bracket">&#93;</span></a></sup> These findings are from 2021 and due to the widespread use of non-antibiotic pharmaceuticals, more research needs to be done in order to further understanding on the issue.<sup id="cite_ref-Wang_2021_141-3" class="reference"><a href="#cite_note-Wang_2021-141"><span class="cite-bracket">&#91;</span>141<span class="cite-bracket">&#93;</span></a></sup> </p><p>Alongside non-antibiotic pharmaceuticals, other compounds relevant to antibiotic resistance have been tested such as <a href="/wiki/Malachite_green" title="Malachite green">malachite green</a>, <a href="/wiki/Ethylbenzene" title="Ethylbenzene">ethylbenzene</a>, <a href="/wiki/Styrene" title="Styrene">styrene</a>, <a href="/wiki/2,4-dichloroaniline" class="mw-redirect" title="2,4-dichloroaniline">2,4-dichloroaniline</a>, <a href="/wiki/1,3,5-Trioxane" title="1,3,5-Trioxane">trioxymethylene</a>, <a href="/wiki/O-Xylene" title="O-Xylene">o-xylene</a> solutions, <a href="/wiki/4-Nitrophenol" title="4-Nitrophenol">p-nitrophenol</a> (PNP), <a href="/wiki/4-Aminophenol" title="4-Aminophenol">p-aminophenol</a> (PAP), and <a href="/wiki/Phenol" title="Phenol">phenol</a> (PhOH).<sup id="cite_ref-Jiao_2017_142-1" class="reference"><a href="#cite_note-Jiao_2017-142"><span class="cite-bracket">&#91;</span>142<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Ma_2021_143-1" class="reference"><a href="#cite_note-Ma_2021-143"><span class="cite-bracket">&#91;</span>143<span class="cite-bracket">&#93;</span></a></sup> It is a global concern that ARGs have been found in <a href="/wiki/Wastewater_treatment" title="Wastewater treatment">wastewater treatment plants</a><sup id="cite_ref-Jiao_2017_142-2" class="reference"><a href="#cite_note-Jiao_2017-142"><span class="cite-bracket">&#91;</span>142<span class="cite-bracket">&#93;</span></a></sup> <a href="/wiki/Textile" title="Textile">Textile</a> wastewater has been found to contain 3- to 13-fold higher abundance of <a href="/wiki/Mobile_genetic_elements" title="Mobile genetic elements">mobile genetic elements</a> than other samples of wastewater.<sup id="cite_ref-Jiao_2017_142-3" class="reference"><a href="#cite_note-Jiao_2017-142"><span class="cite-bracket">&#91;</span>142<span class="cite-bracket">&#93;</span></a></sup> The cause of this is the organic compounds used for textile dying (<i>o</i>-xylene, ethylbenzene, trioxymethylene, styrene, 2,4-dichloroaniline, and malachite green)<sup id="cite_ref-Jiao_2017_142-4" class="reference"><a href="#cite_note-Jiao_2017-142"><span class="cite-bracket">&#91;</span>142<span class="cite-bracket">&#93;</span></a></sup> raising the frequency of <a href="/wiki/Conjugation_(biochemistry)" class="mw-redirect" title="Conjugation (biochemistry)">conjugative transfer</a> when bacteria and plasmid (with donor) are introduced in the presence of these molecules.<sup id="cite_ref-Jiao_2017_142-5" class="reference"><a href="#cite_note-Jiao_2017-142"><span class="cite-bracket">&#91;</span>142<span class="cite-bracket">&#93;</span></a></sup> When textile wastewater combines with wastewater from <a href="/wiki/Sewage" title="Sewage">domestic sewage</a>, the ARGs present in wastewater are transferred at a higher rate due to the addition of textile dyeing compounds increasing the occurrence of HGT.<sup class="noprint Inline-Template Template-Fact" style="white-space:nowrap;">&#91;<i><a href="/wiki/Wikipedia:Citation_needed" title="Wikipedia:Citation needed"><span title="This claim needs references to reliable sources. (February 2023)">citation needed</span></a></i>&#93;</sup> </p><p>Other organic pollutants commonly found in wastewater have been the subject of similar experiments.<sup id="cite_ref-Ma_2021_143-2" class="reference"><a href="#cite_note-Ma_2021-143"><span class="cite-bracket">&#91;</span>143<span class="cite-bracket">&#93;</span></a></sup> A 2021 study used similar methods of&#160; using plasmid in a donor and mixing that with a receptor in the presence of compound in order to test horizontal gene transfer of antibiotic resistance genes but this time in the presence of <a href="/wiki/Phenols" title="Phenols">phenolic compounds</a>.<sup id="cite_ref-Ma_2021_143-3" class="reference"><a href="#cite_note-Ma_2021-143"><span class="cite-bracket">&#91;</span>143<span class="cite-bracket">&#93;</span></a></sup> Phenolic compounds are commonly found in wastewater and have been found to change functions and structures of the <a href="/wiki/Microbial_population_biology" title="Microbial population biology">microbial communities</a> during the wastewater treatment process.<sup id="cite_ref-Ma_2021_143-4" class="reference"><a href="#cite_note-Ma_2021-143"><span class="cite-bracket">&#91;</span>143<span class="cite-bracket">&#93;</span></a></sup> Additionally, HGT increases in frequency in the presence of the compounds p-nitrophenol (PNP), p-aminophenol (PAP), and phenol. These compounds result in a 2- to 9-fold increase in HGT (p-nitrophenol being on the lower side of 2-fold increases and p-aminophenol and phenol having a maximum increase of 9-fold).<sup id="cite_ref-Ma_2021_143-5" class="reference"><a href="#cite_note-Ma_2021-143"><span class="cite-bracket">&#91;</span>143<span class="cite-bracket">&#93;</span></a></sup> This increase in HGT is on average less than the compounds ibuprofen, naproxen, gemfibrozil, diclofenac, propranolol, o-xylene, ethylbenzene, trioxymethylene, styrene, 2,4-dichloroaniline, and malachite green<sup id="cite_ref-Wang_2021_141-4" class="reference"><a href="#cite_note-Wang_2021-141"><span class="cite-bracket">&#91;</span>141<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-Jiao_2017_142-6" class="reference"><a href="#cite_note-Jiao_2017-142"><span class="cite-bracket">&#91;</span>142<span class="cite-bracket">&#93;</span></a></sup> but their increases is still significant.<sup id="cite_ref-Ma_2021_143-6" class="reference"><a href="#cite_note-Ma_2021-143"><span class="cite-bracket">&#91;</span>143<span class="cite-bracket">&#93;</span></a></sup> The study that came to this conclusion is similar to the study on horizontal gene transfer and non-antibiotic pharmaceuticals in that it was done in 2021 and leaves room for more research, specifically in the focus of the study which is <a href="/wiki/Activated_sludge" title="Activated sludge">activated sludge</a>.<sup id="cite_ref-Ma_2021_143-7" class="reference"><a href="#cite_note-Ma_2021-143"><span class="cite-bracket">&#91;</span>143<span class="cite-bracket">&#93;</span></a></sup> </p><p><a href="/wiki/Heavy_metals" class="mw-redirect" title="Heavy metals">Heavy metals</a> have also been found to promote conjugative transfer of antibiotic resistance genes.<sup id="cite_ref-Zhang_2018_144-2" class="reference"><a href="#cite_note-Zhang_2018-144"><span class="cite-bracket">&#91;</span>144<span class="cite-bracket">&#93;</span></a></sup> The paper that led to the discovery of this was done in 2017 during the emerging field of horizontal gene transfer assisting compound research.<sup id="cite_ref-Zhang_2018_144-3" class="reference"><a href="#cite_note-Zhang_2018-144"><span class="cite-bracket">&#91;</span>144<span class="cite-bracket">&#93;</span></a></sup> Metals assist in the spread of antibiotic resistance through both co-resistance as well as <a href="/wiki/Cross-resistance" title="Cross-resistance">cross-resistance</a> mechanisms.<sup id="cite_ref-Zhang_2018_144-4" class="reference"><a href="#cite_note-Zhang_2018-144"><span class="cite-bracket">&#91;</span>144<span class="cite-bracket">&#93;</span></a></sup> In quantities relevant to the environment, <a href="/wiki/Copper" title="Copper">Cu(II)</a>, <a href="/wiki/Silver" title="Silver">Ag(I)</a>, <a href="/wiki/Chromium" title="Chromium">Cr(VI)</a>, and <a href="/wiki/Zinc" title="Zinc">Zn(II)</a> promote HGT from donor and receptor strains of <a href="/wiki/Escherichia_coli" title="Escherichia coli">E. coli</a>.<sup id="cite_ref-Zhang_2018_144-5" class="reference"><a href="#cite_note-Zhang_2018-144"><span class="cite-bracket">&#91;</span>144<span class="cite-bracket">&#93;</span></a></sup> The presence of these metals triggered SOS response from bacterial cells and made the cells more permeable. These are the mechanisms that make even low levels of heavy metal pollution in the environment impact HGT and therefore the spread of ARGs. </p> <div class="mw-heading mw-heading2"><h2 id="Artificial_horizontal_gene_transfer">Artificial horizontal gene transfer</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=29" title="Edit section: Artificial horizontal gene transfer"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1236090951"><div role="note" class="hatnote navigation-not-searchable">See also: <a href="/wiki/Gene_therapy" title="Gene therapy">Gene therapy</a></div> <figure class="mw-default-size" typeof="mw:File/Thumb"><a href="/wiki/File:Artificial_Bacterial_Transformation.svg" class="mw-file-description"><img src="//upload.wikimedia.org/wikipedia/commons/thumb/1/1f/Artificial_Bacterial_Transformation.svg/300px-Artificial_Bacterial_Transformation.svg.png" decoding="async" width="300" height="84" class="mw-file-element" srcset="//upload.wikimedia.org/wikipedia/commons/thumb/1/1f/Artificial_Bacterial_Transformation.svg/450px-Artificial_Bacterial_Transformation.svg.png 1.5x, //upload.wikimedia.org/wikipedia/commons/thumb/1/1f/Artificial_Bacterial_Transformation.svg/600px-Artificial_Bacterial_Transformation.svg.png 2x" data-file-width="512" data-file-height="143" /></a><figcaption>Before it is transformed, a bacterium is susceptible to antibiotics. A plasmid can be inserted when the bacteria is under stress, and be incorporated into the bacterial DNA creating antibiotic resistance. When the plasmids are prepared they are inserted into the bacterial cell by either making pores in the plasma membrane with temperature extremes and chemical treatments, or making it semi permeable through the process of <a href="/wiki/Electrophoresis" title="Electrophoresis">electrophoresis</a>, in which electric currents create the holes in the membrane. After conditions return to normal the holes in the membrane close and the <a href="/wiki/Plasmid" title="Plasmid">plasmids</a> are trapped inside the bacteria where they become part of the genetic material and their genes are expressed by the bacteria.</figcaption></figure> <p><a href="/wiki/Genetic_engineering" title="Genetic engineering">Genetic engineering</a> is essentially horizontal gene transfer, albeit with synthetic expression cassettes. The <a href="/wiki/Sleeping_Beauty_transposon_system" title="Sleeping Beauty transposon system">Sleeping Beauty transposon system</a><sup id="cite_ref-145" class="reference"><a href="#cite_note-145"><span class="cite-bracket">&#91;</span>145<span class="cite-bracket">&#93;</span></a></sup> (SB) was developed as a synthetic gene transfer agent that was based on the known abilities of <a href="/wiki/Tc1/mariner" title="Tc1/mariner">Tc1/mariner</a> transposons to invade genomes of extremely diverse species.<sup id="cite_ref-146" class="reference"><a href="#cite_note-146"><span class="cite-bracket">&#91;</span>146<span class="cite-bracket">&#93;</span></a></sup> The SB system has been used to introduce genetic sequences into a wide variety of animal genomes.<sup id="cite_ref-147" class="reference"><a href="#cite_note-147"><span class="cite-bracket">&#91;</span>147<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-148" class="reference"><a href="#cite_note-148"><span class="cite-bracket">&#91;</span>148<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading2"><h2 id="In_evolution">In evolution</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=30" title="Edit section: In evolution"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1236090951"><div role="note" class="hatnote navigation-not-searchable">Main article: <a href="/wiki/Horizontal_gene_transfer_in_evolution" title="Horizontal gene transfer in evolution">Horizontal gene transfer in evolution</a></div> <p>Horizontal gene transfer is a potential <a href="/wiki/Lurking_variable" class="mw-redirect" title="Lurking variable">confounding factor</a> in inferring <a href="/wiki/Phylogenetic_tree" title="Phylogenetic tree">phylogenetic trees</a> based on the <a href="/wiki/Sequence" title="Sequence">sequence</a> of one gene.<sup id="cite_ref-Lawton_2009_149-0" class="reference"><a href="#cite_note-Lawton_2009-149"><span class="cite-bracket">&#91;</span>149<span class="cite-bracket">&#93;</span></a></sup> For example, given two distantly related bacteria that have exchanged a gene a phylogenetic tree including those species will show them to be closely related because that gene is the same even though most other genes are dissimilar. For this reason, it is often ideal to use other information to infer robust phylogenies such as the presence or absence of genes or, more commonly, to include as wide a range of genes for phylogenetic analysis as possible. </p><p>For example, the most common gene to be used for constructing phylogenetic relationships in <a href="/wiki/Prokaryote" title="Prokaryote">prokaryotes</a> is the <a href="/wiki/16S_ribosomal_RNA" title="16S ribosomal RNA">16S ribosomal RNA</a> gene since its sequences tend to be conserved among members with close phylogenetic distances, but variable enough that differences can be measured. However, in recent years it has also been argued that 16s rRNA genes can also be horizontally transferred. Although this may be infrequent, the validity of 16s rRNA-constructed phylogenetic trees must be reevaluated.<sup id="cite_ref-150" class="reference"><a href="#cite_note-150"><span class="cite-bracket">&#91;</span>150<span class="cite-bracket">&#93;</span></a></sup> </p><p>Biologist <a href="/wiki/Johann_Peter_Gogarten" title="Johann Peter Gogarten">Johann Peter Gogarten</a> suggests "the original metaphor of a tree no longer fits the data from recent genome research" therefore "biologists should use the metaphor of a mosaic to describe the different histories combined in individual genomes and use the metaphor of a net to visualize the rich exchange and cooperative effects of HGT among microbes".<sup id="cite_ref-Gogarten_2000_40-1" class="reference"><a href="#cite_note-Gogarten_2000-40"><span class="cite-bracket">&#91;</span>40<span class="cite-bracket">&#93;</span></a></sup> There exist several methods to infer such <a href="/wiki/Phylogenetic_network" title="Phylogenetic network">phylogenetic networks</a>. </p><p>Using single genes as <a href="/wiki/Phylogenetic_marker" class="mw-redirect" title="Phylogenetic marker">phylogenetic markers</a>, it is difficult to trace organismal <a href="/wiki/Phylogeny" class="mw-redirect" title="Phylogeny">phylogeny</a> in the presence of horizontal gene transfer. Combining the simple <a href="/wiki/Coalescent_theory" title="Coalescent theory">coalescence</a> model of <a href="/wiki/Cladogenesis" title="Cladogenesis">cladogenesis</a> with rare HGT horizontal gene transfer events suggest there was no single <a href="/wiki/Most_recent_common_ancestor" title="Most recent common ancestor">most recent common ancestor</a> that contained all of the genes ancestral to those shared among the three domains of <a href="/wiki/Life" title="Life">life</a>. Each contemporary <a href="/wiki/Molecule" title="Molecule">molecule</a> has its own history and traces back to an individual molecule <a href="/wiki/Cenancestor" class="mw-redirect" title="Cenancestor">cenancestor</a>. However, these molecular ancestors were likely to be present in different organisms at different times."<sup id="cite_ref-151" class="reference"><a href="#cite_note-151"><span class="cite-bracket">&#91;</span>151<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading3"><h3 id="Challenge_to_the_tree_of_life">Challenge to the tree of life</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=31" title="Edit section: Challenge to the tree of life"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1236090951"><div role="note" class="hatnote navigation-not-searchable">Further information: <a href="/wiki/Last_universal_common_ancestor" title="Last universal common ancestor">Last universal common ancestor</a> and <a href="/wiki/Tree_of_life_(science)" class="mw-redirect" title="Tree of life (science)">tree of life (science)</a></div> <p>Horizontal gene transfer poses a possible challenge to the concept of the <a href="/wiki/Last_universal_common_ancestor" title="Last universal common ancestor">last universal common ancestor</a> (LUCA) at the root of the <a href="/wiki/Tree_of_life_(science)" class="mw-redirect" title="Tree of life (science)">tree of life</a> first formulated by <a href="/wiki/Carl_Woese" title="Carl Woese">Carl Woese</a>, which led him to propose the <a href="/wiki/Archaea" title="Archaea">Archaea</a> as a third domain of life.<sup id="cite_ref-Doolittle_2000_152-0" class="reference"><a href="#cite_note-Doolittle_2000-152"><span class="cite-bracket">&#91;</span>152<span class="cite-bracket">&#93;</span></a></sup> Indeed, it was while examining the new three-domain view of life that horizontal gene transfer arose as a complicating issue: <i><a href="/wiki/Archaeoglobus" title="Archaeoglobus">Archaeoglobus fulgidus</a></i> was seen as an anomaly with respect to a phylogenetic tree based upon the encoding for the <a href="/wiki/Enzyme" title="Enzyme">enzyme</a> <a href="/wiki/HMGCoA_reductase" class="mw-redirect" title="HMGCoA reductase">HMGCoA reductase</a>—the organism in question is a definite Archaean, with all the cell lipids and transcription machinery that are expected of an Archaean, but whose HMGCoA genes are of bacterial origin.<sup id="cite_ref-Doolittle_2000_152-1" class="reference"><a href="#cite_note-Doolittle_2000-152"><span class="cite-bracket">&#91;</span>152<span class="cite-bracket">&#93;</span></a></sup> Scientists are broadly agreed on <a href="/wiki/Symbiogenesis" title="Symbiogenesis">symbiogenesis</a>, that <a href="/wiki/Mitochondrion" title="Mitochondrion">mitochondria</a> in eukaryotes derived from <a href="/wiki/Alpha-proteobacteria" class="mw-redirect" title="Alpha-proteobacteria">alpha-proteobacterial</a> cells and that <a href="/wiki/Chloroplast" title="Chloroplast">chloroplasts</a> came from ingested <a href="/wiki/Cyanobacteria" title="Cyanobacteria">cyanobacteria</a>, and other gene transfers may have affected early eukaryotes. (In contrast, multicellular eukaryotes have mechanisms to prevent horizontal gene transfer, including separated <a href="/wiki/Germ_cell" title="Germ cell">germ cells</a>.) If there had been continued and extensive gene transfer, there would be a complex network with many ancestors, instead of a tree of life with sharply delineated lineages leading back to a LUCA.<sup id="cite_ref-Doolittle_2000_152-2" class="reference"><a href="#cite_note-Doolittle_2000-152"><span class="cite-bracket">&#91;</span>152<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-153" class="reference"><a href="#cite_note-153"><span class="cite-bracket">&#91;</span>153<span class="cite-bracket">&#93;</span></a></sup> However, a LUCA can be identified, so horizontal transfers must have been relatively limited.<sup id="cite_ref-Theobald_2010_154-0" class="reference"><a href="#cite_note-Theobald_2010-154"><span class="cite-bracket">&#91;</span>154<span class="cite-bracket">&#93;</span></a></sup> </p><p>Other early HGTs are thought to have happened. The <a href="/wiki/First_universal_common_ancestor" title="First universal common ancestor">first common ancestor</a> (FUCA), earliest ancestor of LUCA, had other descendants that had their own lineages.<sup id="cite_ref-Harris_2021_155-0" class="reference"><a href="#cite_note-Harris_2021-155"><span class="cite-bracket">&#91;</span>155<span class="cite-bracket">&#93;</span></a></sup> These now-extinct sister lineages of LUCA descending from FUCA are thought to have horizontally transferred some of their genes into the genome of early descendants of LUCA.<sup id="cite_ref-Harris_2021_155-1" class="reference"><a href="#cite_note-Harris_2021-155"><span class="cite-bracket">&#91;</span>155<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading3"><h3 id="Phylogenetic_information_in_HGT">Phylogenetic information in HGT</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=32" title="Edit section: Phylogenetic information in HGT"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p>It has been remarked that, despite the complications, the detection of horizontal gene transfers brings valuable phylogenetic and dating information.<sup id="cite_ref-156" class="reference"><a href="#cite_note-156"><span class="cite-bracket">&#91;</span>156<span class="cite-bracket">&#93;</span></a></sup> </p><p>The potential of HGT to be used for dating phylogenies has recently been confirmed.<sup id="cite_ref-157" class="reference"><a href="#cite_note-157"><span class="cite-bracket">&#91;</span>157<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-158" class="reference"><a href="#cite_note-158"><span class="cite-bracket">&#91;</span>158<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading3"><h3 id="The_chromosomal_organization_of_horizontal_gene_transfer">The chromosomal organization of horizontal gene transfer</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=33" title="Edit section: The chromosomal organization of horizontal gene transfer"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <p>The acquisition of new genes has the potential to disorganize the other genetic elements and hinder the function of the bacterial cell, thus affecting the competitiveness of bacteria. Consequently, bacterial adaptation lies in a conflict between the advantages of acquiring beneficial genes, and the need to maintain the organization of the rest of its genome. Horizontally transferred genes are typically concentrated in only ~1% of the chromosome (in regions called hotspots). This concentration increases with genome size and with the rate of transfer. Hotspots diversify by rapid gene turnover; their chromosomal distribution depends on local contexts (neighboring core genes), and content in mobile genetic elements. Hotspots concentrate most changes in gene repertoires, reduce the trade-off between genome diversification and organization, and should be treasure troves of strain-specific adaptive genes. Most mobile genetic elements and antibiotic resistance genes are in hotspots, but many hotspots lack recognizable mobile genetic elements and exhibit frequent homologous recombination at flanking core genes. Overrepresentation of hotspots with fewer mobile genetic elements in naturally transformable bacteria suggests that homologous recombination and horizontal gene transfer are tightly linked in genome evolution.<sup id="cite_ref-159" class="reference"><a href="#cite_note-159"><span class="cite-bracket">&#91;</span>159<span class="cite-bracket">&#93;</span></a></sup> </p> <div class="mw-heading mw-heading3"><h3 id="Genes">Genes</h3><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=34" title="Edit section: Genes"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <style data-mw-deduplicate="TemplateStyles:r1251242444">.mw-parser-output .ambox{border:1px solid #a2a9b1;border-left:10px solid #36c;background-color:#fbfbfb;box-sizing:border-box}.mw-parser-output .ambox+link+.ambox,.mw-parser-output .ambox+link+style+.ambox,.mw-parser-output .ambox+link+link+.ambox,.mw-parser-output .ambox+.mw-empty-elt+link+.ambox,.mw-parser-output .ambox+.mw-empty-elt+link+style+.ambox,.mw-parser-output .ambox+.mw-empty-elt+link+link+.ambox{margin-top:-1px}html body.mediawiki .mw-parser-output .ambox.mbox-small-left{margin:4px 1em 4px 0;overflow:hidden;width:238px;border-collapse:collapse;font-size:88%;line-height:1.25em}.mw-parser-output .ambox-speedy{border-left:10px solid #b32424;background-color:#fee7e6}.mw-parser-output .ambox-delete{border-left:10px solid #b32424}.mw-parser-output .ambox-content{border-left:10px solid #f28500}.mw-parser-output .ambox-style{border-left:10px solid #fc3}.mw-parser-output .ambox-move{border-left:10px solid #9932cc}.mw-parser-output .ambox-protection{border-left:10px solid #a2a9b1}.mw-parser-output .ambox .mbox-text{border:none;padding:0.25em 0.5em;width:100%}.mw-parser-output .ambox .mbox-image{border:none;padding:2px 0 2px 0.5em;text-align:center}.mw-parser-output .ambox .mbox-imageright{border:none;padding:2px 0.5em 2px 0;text-align:center}.mw-parser-output .ambox .mbox-empty-cell{border:none;padding:0;width:1px}.mw-parser-output .ambox .mbox-image-div{width:52px}@media(min-width:720px){.mw-parser-output .ambox{margin:0 10%}}@media print{body.ns-0 .mw-parser-output .ambox{display:none!important}}</style><table class="plainlinks metadata ambox mbox-small-left ambox-notice" role="presentation" style="width: auto;"><tbody><tr><td class="mbox-image"><span typeof="mw:File"><span><img alt="" src="//upload.wikimedia.org/wikipedia/en/thumb/1/1d/Information_icon4.svg/20px-Information_icon4.svg.png" decoding="async" width="20" height="20" class="mw-file-element" srcset="//upload.wikimedia.org/wikipedia/en/thumb/1/1d/Information_icon4.svg/30px-Information_icon4.svg.png 1.5x, //upload.wikimedia.org/wikipedia/en/thumb/1/1d/Information_icon4.svg/40px-Information_icon4.svg.png 2x" data-file-width="620" data-file-height="620" /></span></span></td><td class="mbox-text" style="width: auto;"><div class="mbox-text-span">This list is <a href="/wiki/Wikipedia:WikiProject_Lists#Incomplete_lists" title="Wikipedia:WikiProject Lists">incomplete</a>; you can help by <a class="external text" href="https://en.wikipedia.org/w/index.php?title=Horizontal_gene_transfer&amp;action=edit">adding missing items</a>. <span class="date-container"><i>(<span class="date">August 2008</span>)</i></span></div></td></tr></tbody></table> <p>There is evidence for historical horizontal transfer of the following genes: </p> <ul><li><a href="/wiki/Lycopene" title="Lycopene">Lycopene</a> <a href="/wiki/Cyclase" title="Cyclase">cyclase</a> for <a href="/wiki/Carotenoid" title="Carotenoid">carotenoid</a> <a href="/wiki/Biosynthesis" title="Biosynthesis">biosynthesis</a>, between <a href="/wiki/Chlorobiota" class="mw-redirect" title="Chlorobiota">Chlorobiota</a> and "<a href="/wiki/Cyanobacteria" title="Cyanobacteria">Cyanobacteria</a>".<sup id="cite_ref-160" class="reference"><a href="#cite_note-160"><span class="cite-bracket">&#91;</span>160<span class="cite-bracket">&#93;</span></a></sup></li> <li><i>TetO</i> gene conferring resistance to <a href="/wiki/Tetracycline" title="Tetracycline">tetracycline</a>, between <i><a href="/wiki/Campylobacter_jejuni" title="Campylobacter jejuni">Campylobacter jejuni</a></i>.<sup id="cite_ref-161" class="reference"><a href="#cite_note-161"><span class="cite-bracket">&#91;</span>161<span class="cite-bracket">&#93;</span></a></sup></li> <li>Neochrome, a gene in some ferns that enhances their ability to survive in dim light. Believed to have been acquired from algae sometime during the Cretaceous.<sup id="cite_ref-162" class="reference"><a href="#cite_note-162"><span class="cite-bracket">&#91;</span>162<span class="cite-bracket">&#93;</span></a></sup><sup id="cite_ref-163" class="reference"><a href="#cite_note-163"><span class="cite-bracket">&#91;</span>163<span class="cite-bracket">&#93;</span></a></sup></li> <li>Transfer of a <a href="/wiki/Cysteine_synthase" title="Cysteine synthase">cysteine synthase</a> from a bacterium into <a href="/wiki/Herbivore" title="Herbivore">phytophagous</a> <a href="/wiki/Mite" title="Mite">mites</a> and <a href="/wiki/Lepidoptera" title="Lepidoptera">Lepidoptera</a> allowing the detoxification of <a href="/wiki/Cyanogenic_glycosides" class="mw-redirect" title="Cyanogenic glycosides">cyanogenic glucosides</a> produced by host plants.<sup id="cite_ref-164" class="reference"><a href="#cite_note-164"><span class="cite-bracket">&#91;</span>164<span class="cite-bracket">&#93;</span></a></sup></li> <li>The <a href="/wiki/LINE1" title="LINE1">LINE1</a> sequence has transferred from humans to the <a href="/wiki/Gonorrhea" title="Gonorrhea">gonorrhea</a> bacteria.<sup id="cite_ref-165" class="reference"><a href="#cite_note-165"><span class="cite-bracket">&#91;</span>165<span class="cite-bracket">&#93;</span></a></sup></li></ul> <div class="mw-heading mw-heading2"><h2 id="See_also">See also</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=35" title="Edit section: See also"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <style data-mw-deduplicate="TemplateStyles:r1239009302">.mw-parser-output .portalbox{padding:0;margin:0.5em 0;display:table;box-sizing:border-box;max-width:175px;list-style:none}.mw-parser-output .portalborder{border:1px solid var(--border-color-base,#a2a9b1);padding:0.1em;background:var(--background-color-neutral-subtle,#f8f9fa)}.mw-parser-output .portalbox-entry{display:table-row;font-size:85%;line-height:110%;height:1.9em;font-style:italic;font-weight:bold}.mw-parser-output .portalbox-image{display:table-cell;padding:0.2em;vertical-align:middle;text-align:center}.mw-parser-output .portalbox-link{display:table-cell;padding:0.2em 0.2em 0.2em 0.3em;vertical-align:middle}@media(min-width:720px){.mw-parser-output .portalleft{clear:left;float:left;margin:0.5em 1em 0.5em 0}.mw-parser-output .portalright{clear:right;float:right;margin:0.5em 0 0.5em 1em}}</style><ul role="navigation" aria-label="Portals" class="noprint portalbox portalborder portalright"> <li class="portalbox-entry"><span class="portalbox-image"><span class="noviewer" typeof="mw:File"><a href="/wiki/File:Tree_of_life.svg" class="mw-file-description"><img alt="icon" src="//upload.wikimedia.org/wikipedia/commons/thumb/0/09/Tree_of_life.svg/32px-Tree_of_life.svg.png" decoding="async" width="32" height="27" class="mw-file-element" srcset="//upload.wikimedia.org/wikipedia/commons/thumb/0/09/Tree_of_life.svg/48px-Tree_of_life.svg.png 1.5x, //upload.wikimedia.org/wikipedia/commons/thumb/0/09/Tree_of_life.svg/64px-Tree_of_life.svg.png 2x" data-file-width="915" data-file-height="760" /></a></span></span><span class="portalbox-link"><a href="/wiki/Portal:Evolutionary_biology" title="Portal:Evolutionary biology">Evolutionary biology portal</a></span></li></ul> <style data-mw-deduplicate="TemplateStyles:r1184024115">.mw-parser-output .div-col{margin-top:0.3em;column-width:30em}.mw-parser-output .div-col-small{font-size:90%}.mw-parser-output .div-col-rules{column-rule:1px solid #aaa}.mw-parser-output .div-col dl,.mw-parser-output .div-col ol,.mw-parser-output .div-col ul{margin-top:0}.mw-parser-output .div-col li,.mw-parser-output .div-col dd{page-break-inside:avoid;break-inside:avoid-column}</style><div class="div-col" style="column-width: 18em;"> <ul><li><a href="/wiki/Agrobacterium" title="Agrobacterium">Agrobacterium</a>, a bacterium well known for its ability to transfer DNA between itself and plants.</li> <li><a href="/wiki/Endogenous_retrovirus" title="Endogenous retrovirus">Endogenous retrovirus</a></li> <li><a href="/wiki/Genetically_modified_organism" title="Genetically modified organism">Genetically modified organism</a></li> <li><a href="/wiki/Inferring_horizontal_gene_transfer" title="Inferring horizontal gene transfer">Inferring horizontal gene transfer</a></li> <li><a href="/wiki/Integron" title="Integron">Integron</a></li> <li><a href="/wiki/Mobile_genetic_elements" title="Mobile genetic elements">Mobile genetic elements</a></li> <li><a href="/wiki/Phylogenetic_network" title="Phylogenetic network">Phylogenetic network</a></li> <li><a href="/wiki/Phylogenetic_tree" title="Phylogenetic tree">Phylogenetic tree</a></li> <li><a href="/wiki/Provirus" title="Provirus">Provirus</a></li> <li><a href="/wiki/Reassortment" title="Reassortment">Reassortment</a></li> <li><a href="/wiki/Retrotransposon" title="Retrotransposon">Retrotransposon</a></li> <li><a href="/wiki/Symbiogenesis" title="Symbiogenesis">Symbiogenesis</a></li> <li><a href="/wiki/Tree_of_life_(biology)" title="Tree of life (biology)">Tree of life (biology)</a></li> <li><a href="/wiki/Xenobiology" title="Xenobiology">Xenobiology</a></li></ul> </div> <div class="mw-heading mw-heading2"><h2 id="References">References</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=36" title="Edit section: References"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <style data-mw-deduplicate="TemplateStyles:r1239543626">.mw-parser-output .reflist{margin-bottom:0.5em;list-style-type:decimal}@media screen{.mw-parser-output .reflist{font-size:90%}}.mw-parser-output .reflist .references{font-size:100%;margin-bottom:0;list-style-type:inherit}.mw-parser-output .reflist-columns-2{column-width:30em}.mw-parser-output .reflist-columns-3{column-width:25em}.mw-parser-output .reflist-columns{margin-top:0.3em}.mw-parser-output .reflist-columns ol{margin-top:0}.mw-parser-output .reflist-columns li{page-break-inside:avoid;break-inside:avoid-column}.mw-parser-output .reflist-upper-alpha{list-style-type:upper-alpha}.mw-parser-output .reflist-upper-roman{list-style-type:upper-roman}.mw-parser-output .reflist-lower-alpha{list-style-type:lower-alpha}.mw-parser-output .reflist-lower-greek{list-style-type:lower-greek}.mw-parser-output .reflist-lower-roman{list-style-type:lower-roman}</style><div class="reflist reflist-columns references-column-width" style="column-width: 30em;"> <ol class="references"> <li id="cite_note-1"><span class="mw-cite-backlink"><b><a href="#cite_ref-1">^</a></b></span> <span class="reference-text"><style data-mw-deduplicate="TemplateStyles:r1238218222">.mw-parser-output cite.citation{font-style:inherit;word-wrap:break-word}.mw-parser-output .citation q{quotes:"\"""\"""'""'"}.mw-parser-output .citation:target{background-color:rgba(0,127,255,0.133)}.mw-parser-output .id-lock-free.id-lock-free a{background:url("//upload.wikimedia.org/wikipedia/commons/6/65/Lock-green.svg")right 0.1em center/9px no-repeat}.mw-parser-output .id-lock-limited.id-lock-limited a,.mw-parser-output .id-lock-registration.id-lock-registration a{background:url("//upload.wikimedia.org/wikipedia/commons/d/d6/Lock-gray-alt-2.svg")right 0.1em center/9px no-repeat}.mw-parser-output .id-lock-subscription.id-lock-subscription a{background:url("//upload.wikimedia.org/wikipedia/commons/a/aa/Lock-red-alt-2.svg")right 0.1em center/9px no-repeat}.mw-parser-output .cs1-ws-icon a{background:url("//upload.wikimedia.org/wikipedia/commons/4/4c/Wikisource-logo.svg")right 0.1em center/12px no-repeat}body:not(.skin-timeless):not(.skin-minerva) .mw-parser-output .id-lock-free a,body:not(.skin-timeless):not(.skin-minerva) .mw-parser-output .id-lock-limited a,body:not(.skin-timeless):not(.skin-minerva) .mw-parser-output .id-lock-registration a,body:not(.skin-timeless):not(.skin-minerva) .mw-parser-output .id-lock-subscription a,body:not(.skin-timeless):not(.skin-minerva) .mw-parser-output .cs1-ws-icon a{background-size:contain;padding:0 1em 0 0}.mw-parser-output .cs1-code{color:inherit;background:inherit;border:none;padding:inherit}.mw-parser-output .cs1-hidden-error{display:none;color:var(--color-error,#d33)}.mw-parser-output .cs1-visible-error{color:var(--color-error,#d33)}.mw-parser-output .cs1-maint{display:none;color:#085;margin-left:0.3em}.mw-parser-output .cs1-kern-left{padding-left:0.2em}.mw-parser-output .cs1-kern-right{padding-right:0.2em}.mw-parser-output .citation .mw-selflink{font-weight:inherit}@media screen{.mw-parser-output .cs1-format{font-size:95%}html.skin-theme-clientpref-night .mw-parser-output .cs1-maint{color:#18911f}}@media screen and (prefers-color-scheme:dark){html.skin-theme-clientpref-os .mw-parser-output .cs1-maint{color:#18911f}}</style><cite id="CITEREFOchmanLawrenceGroisman2000" class="citation journal cs1">Ochman H, Lawrence JG, Groisman EA (May 2000). "Lateral gene transfer and the nature of bacterial innovation". <i>Nature</i>. <b>405</b> (6784): 299–304. <a href="/wiki/Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2000Natur.405..299O">2000Natur.405..299O</a>. <a href="/wiki/Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1038%2F35012500">10.1038/35012500</a>. <a href="/wiki/PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&#160;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/10830951">10830951</a>. <a href="/wiki/S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&#160;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:85739173">85739173</a>.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&amp;rft.genre=article&amp;rft.jtitle=Nature&amp;rft.atitle=Lateral+gene+transfer+and+the+nature+of+bacterial+innovation&amp;rft.volume=405&amp;rft.issue=6784&amp;rft.pages=299-304&amp;rft.date=2000-05&amp;rft_id=info%3Adoi%2F10.1038%2F35012500&amp;rft_id=https%3A%2F%2Fapi.semanticscholar.org%2FCorpusID%3A85739173%23id-name%3DS2CID&amp;rft_id=info%3Apmid%2F10830951&amp;rft_id=info%3Abibcode%2F2000Natur.405..299O&amp;rft.aulast=Ochman&amp;rft.aufirst=H&amp;rft.au=Lawrence%2C+JG&amp;rft.au=Groisman%2C+EA&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span></span> </li> <li id="cite_note-2"><span class="mw-cite-backlink"><b><a href="#cite_ref-2">^</a></b></span> <span class="reference-text"><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFDunning_Hotopp2011" class="citation journal cs1">Dunning Hotopp JC (April 2011). <a 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National Geographic. Archived from <a rel="nofollow" class="external text" href="http://phenomena.nationalgeographic.com/2011/02/16/gonorrhea-has-picked-up-human-dna-and-thats-just-the-beginning/">the original</a> on January 6, 2013<span class="reference-accessdate">. Retrieved <span class="nowrap">2016-07-14</span></span>.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Abook&amp;rft.genre=unknown&amp;rft.btitle=Gonorrhea+has+picked+up+human+DNA+%28and+that%27s+just+the+beginning%29&amp;rft.pub=National+Geographic&amp;rft.date=2011-02-16&amp;rft.aulast=Yong&amp;rft.aufirst=E&amp;rft_id=http%3A%2F%2Fphenomena.nationalgeographic.com%2F2011%2F02%2F16%2Fgonorrhea-has-picked-up-human-dna-and-thats-just-the-beginning%2F&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span></span> </li> </ol></div> <div class="mw-heading mw-heading2"><h2 id="Further_reading">Further reading</h2><span class="mw-editsection"><span class="mw-editsection-bracket">[</span><a href="/w/index.php?title=Horizontal_gene_transfer&amp;action=edit&amp;section=37" title="Edit section: Further reading"><span>edit</span></a><span class="mw-editsection-bracket">]</span></span></div> <style data-mw-deduplicate="TemplateStyles:r1239549316">.mw-parser-output .refbegin{margin-bottom:0.5em}.mw-parser-output .refbegin-hanging-indents>ul{margin-left:0}.mw-parser-output .refbegin-hanging-indents>ul>li{margin-left:0;padding-left:3.2em;text-indent:-3.2em}.mw-parser-output .refbegin-hanging-indents ul,.mw-parser-output .refbegin-hanging-indents ul li{list-style:none}@media(max-width:720px){.mw-parser-output .refbegin-hanging-indents>ul>li{padding-left:1.6em;text-indent:-1.6em}}.mw-parser-output .refbegin-columns{margin-top:0.3em}.mw-parser-output .refbegin-columns ul{margin-top:0}.mw-parser-output .refbegin-columns li{page-break-inside:avoid;break-inside:avoid-column}@media screen{.mw-parser-output .refbegin{font-size:90%}}</style><div class="refbegin refbegin-columns references-column-width" style="column-width: 30em"> <ul><li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFQuammen2018" class="citation book cs1">Quammen D (2018). <i>The Tangled Tree: A Radical New History of Life</i>. Simon &amp; Schuster. <a href="/wiki/ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&#160;<a href="/wiki/Special:BookSources/978-1-4767-7662-0" title="Special:BookSources/978-1-4767-7662-0"><bdi>978-1-4767-7662-0</bdi></a>.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Abook&amp;rft.genre=book&amp;rft.btitle=The+Tangled+Tree%3A+A+Radical+New+History+of+Life&amp;rft.pub=Simon+%26+Schuster&amp;rft.date=2018&amp;rft.isbn=978-1-4767-7662-0&amp;rft.aulast=Quammen&amp;rft.aufirst=D&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span></li> <li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFGylesBoerlin2014" class="citation journal cs1">Gyles C, Boerlin P (March 2014). <a rel="nofollow" class="external text" href="https://doi.org/10.1177%2F0300985813511131">"Horizontally transferred genetic elements and their role in pathogenesis of bacterial disease"</a>. <i>Veterinary Pathology</i>. <b>51</b> (2): 328–40. <a href="/wiki/Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1177%2F0300985813511131">10.1177/0300985813511131</a></span>. <a href="/wiki/PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&#160;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/24318976">24318976</a>. <a href="/wiki/S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&#160;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:206510894">206510894</a>.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&amp;rft.genre=article&amp;rft.jtitle=Veterinary+Pathology&amp;rft.atitle=Horizontally+transferred+genetic+elements+and+their+role+in+pathogenesis+of+bacterial+disease&amp;rft.volume=51&amp;rft.issue=2&amp;rft.pages=328-40&amp;rft.date=2014-03&amp;rft_id=https%3A%2F%2Fapi.semanticscholar.org%2FCorpusID%3A206510894%23id-name%3DS2CID&amp;rft_id=info%3Apmid%2F24318976&amp;rft_id=info%3Adoi%2F10.1177%2F0300985813511131&amp;rft.aulast=Gyles&amp;rft.aufirst=C&amp;rft.au=Boerlin%2C+P&amp;rft_id=https%3A%2F%2Fdoi.org%2F10.1177%252F0300985813511131&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span></li> <li><a rel="nofollow" class="external text" href="http://vme.net/hgt/">– Papers by Dr Michael Syvanen on Horizontal Gene Transfer</a> <a rel="nofollow" class="external text" href="https://web.archive.org/web/20220227031337/http://vme.net/hgt/">Archived</a> 2022-02-27 at the <a href="/wiki/Wayback_Machine" title="Wayback Machine">Wayback Machine</a></li> <li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFSalzbergWhitePetersonEisen2001" class="citation journal cs1">Salzberg SL, White O, Peterson J, Eisen JA (June 2001). <a rel="nofollow" class="external text" href="https://web.archive.org/web/20060901131814/http://www.cbcb.umd.edu/~salzberg/docs/ScienceLateralTransfer.pdf">"Microbial genes in the human genome: lateral transfer or gene loss?"</a> <span class="cs1-format">(PDF)</span>. <i>Science</i>. <b>292</b> (5523): 1903–6. <a href="/wiki/Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2001Sci...292.1903S">2001Sci...292.1903S</a>. <a href="/wiki/Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1126%2Fscience.1061036">10.1126/science.1061036</a>. <a href="/wiki/PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&#160;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/11358996">11358996</a>. <a href="/wiki/S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&#160;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:17016011">17016011</a>. Archived from <a rel="nofollow" class="external text" href="http://www.cbcb.umd.edu/~salzberg/docs/ScienceLateralTransfer.pdf">the original</a> <span class="cs1-format">(PDF)</span> on 2006-09-01<span class="reference-accessdate">. Retrieved <span class="nowrap">2005-12-29</span></span>. <q>About 40 genes were found to be exclusively shared by humans and bacteria and are candidate examples of horizontal transfer from bacteria to vertebrates. Gene loss combined with sample size effects and evolutionary rate variation provide an alternative, more biologically plausible explanation</q></cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&amp;rft.genre=article&amp;rft.jtitle=Science&amp;rft.atitle=Microbial+genes+in+the+human+genome%3A+lateral+transfer+or+gene+loss%3F&amp;rft.volume=292&amp;rft.issue=5523&amp;rft.pages=1903-6&amp;rft.date=2001-06&amp;rft_id=info%3Adoi%2F10.1126%2Fscience.1061036&amp;rft_id=https%3A%2F%2Fapi.semanticscholar.org%2FCorpusID%3A17016011%23id-name%3DS2CID&amp;rft_id=info%3Apmid%2F11358996&amp;rft_id=info%3Abibcode%2F2001Sci...292.1903S&amp;rft.aulast=Salzberg&amp;rft.aufirst=SL&amp;rft.au=White%2C+O&amp;rft.au=Peterson%2C+J&amp;rft.au=Eisen%2C+JA&amp;rft_id=http%3A%2F%2Fwww.cbcb.umd.edu%2F~salzberg%2Fdocs%2FScienceLateralTransfer.pdf&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span></li> <li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFQiCuiFangLing2004" class="citation journal cs1">Qi Z, Cui Y, Fang W, Ling L, Chen R (January 2004). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3456315">"Autosomal similarity revealed by eukaryotic genomic comparison"</a>. <i>Journal of Biological Physics</i>. <b>30</b> (4): 305–12. <a href="/wiki/Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1007%2Fs10867-004-0996-0">10.1007/s10867-004-0996-0</a>. <a href="/wiki/PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&#160;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3456315">3456315</a></span>. <a href="/wiki/PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&#160;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/23345874">23345874</a>.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&amp;rft.genre=article&amp;rft.jtitle=Journal+of+Biological+Physics&amp;rft.atitle=Autosomal+similarity+revealed+by+eukaryotic+genomic+comparison&amp;rft.volume=30&amp;rft.issue=4&amp;rft.pages=305-12&amp;rft.date=2004-01&amp;rft_id=https%3A%2F%2Fwww.ncbi.nlm.nih.gov%2Fpmc%2Farticles%2FPMC3456315%23id-name%3DPMC&amp;rft_id=info%3Apmid%2F23345874&amp;rft_id=info%3Adoi%2F10.1007%2Fs10867-004-0996-0&amp;rft.aulast=Qi&amp;rft.aufirst=Z&amp;rft.au=Cui%2C+Y&amp;rft.au=Fang%2C+W&amp;rft.au=Ling%2C+L&amp;rft.au=Chen%2C+R&amp;rft_id=https%3A%2F%2Fwww.ncbi.nlm.nih.gov%2Fpmc%2Farticles%2FPMC3456315&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span></li> <li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFWoese2002" class="citation journal cs1">Woese CR (June 2002). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC124369">"On the evolution of cells"</a>. <i>Proceedings of the National Academy of Sciences of the United States of America</i>. <b>99</b> (13): 8742–7. <a href="/wiki/Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2002PNAS...99.8742W">2002PNAS...99.8742W</a>. <a href="/wiki/Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1073%2Fpnas.132266999">10.1073/pnas.132266999</a></span>. <a href="/wiki/PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&#160;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC124369">124369</a></span>. <a href="/wiki/PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&#160;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/12077305">12077305</a>.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&amp;rft.genre=article&amp;rft.jtitle=Proceedings+of+the+National+Academy+of+Sciences+of+the+United+States+of+America&amp;rft.atitle=On+the+evolution+of+cells&amp;rft.volume=99&amp;rft.issue=13&amp;rft.pages=8742-7&amp;rft.date=2002-06&amp;rft_id=https%3A%2F%2Fwww.ncbi.nlm.nih.gov%2Fpmc%2Farticles%2FPMC124369%23id-name%3DPMC&amp;rft_id=info%3Apmid%2F12077305&amp;rft_id=info%3Adoi%2F10.1073%2Fpnas.132266999&amp;rft_id=info%3Abibcode%2F2002PNAS...99.8742W&amp;rft.aulast=Woese&amp;rft.aufirst=CR&amp;rft_id=https%3A%2F%2Fwww.ncbi.nlm.nih.gov%2Fpmc%2Farticles%2FPMC124369&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span> This article seeks to shift the emphasis in early <a href="/wiki/Phylogenetics" title="Phylogenetics">phylogenic adaptation</a> from vertical to horizontal gene transfer. He uses the term "Darwinian Threshold" for the time of major transition of evolutionary mechanisms from mostly horizontal to mostly vertical transfer, and the "origin of speciation".</li> <li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFSnelBorkHuynen1999" class="citation journal cs1">Snel B, Bork P, Huynen MA (January 1999). "Genome phylogeny based on gene content". <i>Nature Genetics</i>. <b>21</b> (1): 108–10. <a href="/wiki/Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1038%2F5052">10.1038/5052</a>. <a href="/wiki/PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&#160;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/9916801">9916801</a>. <a href="/wiki/S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&#160;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:10296406">10296406</a>.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&amp;rft.genre=article&amp;rft.jtitle=Nature+Genetics&amp;rft.atitle=Genome+phylogeny+based+on+gene+content&amp;rft.volume=21&amp;rft.issue=1&amp;rft.pages=108-10&amp;rft.date=1999-01&amp;rft_id=https%3A%2F%2Fapi.semanticscholar.org%2FCorpusID%3A10296406%23id-name%3DS2CID&amp;rft_id=info%3Apmid%2F9916801&amp;rft_id=info%3Adoi%2F10.1038%2F5052&amp;rft.aulast=Snel&amp;rft.aufirst=B&amp;rft.au=Bork%2C+P&amp;rft.au=Huynen%2C+MA&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span> This article proposes using the presence or absence of a set of genes to infer phylogenies, in order to avoid confounding factors such as horizontal gene transfer.</li> <li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite class="citation web cs1"><a rel="nofollow" class="external text" href="https://web.archive.org/web/20051102081911/http://www.nature.com/nrmicro/focus/genetransfer/index.html">"Webfocus in Nature with free review articles"</a>. Archived from <a rel="nofollow" class="external text" href="http://www.nature.com/nrmicro/focus/genetransfer/index.html">the original</a> on 2005-11-02.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Abook&amp;rft.genre=unknown&amp;rft.btitle=Webfocus+in+Nature+with+free+review+articles&amp;rft_id=http%3A%2F%2Fwww.nature.com%2Fnrmicro%2Ffocus%2Fgenetransfer%2Findex.html&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span></li> <li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFPatilSonti2004" class="citation journal cs1">Patil PB, Sonti RV (October 2004). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC524487">"Variation suggestive of horizontal gene transfer at a lipopolysaccharide (lps) biosynthetic locus in Xanthomonas oryzae pv. oryzae, the bacterial leaf blight pathogen of rice"</a>. <i>BMC Microbiology</i>. <b>4</b> (1): 40. <a href="/wiki/Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1186%2F1471-2180-4-40">10.1186/1471-2180-4-40</a></span>. <a href="/wiki/PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&#160;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC524487">524487</a></span>. <a href="/wiki/PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&#160;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/15473911">15473911</a>.</cite><span title="ctx_ver=Z39.88-2004&amp;rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&amp;rft.genre=article&amp;rft.jtitle=BMC+Microbiology&amp;rft.atitle=Variation+suggestive+of+horizontal+gene+transfer+at+a+lipopolysaccharide+%28lps%29+biosynthetic+locus+in+Xanthomonas+oryzae+pv.+oryzae%2C+the+bacterial+leaf+blight+pathogen+of+rice&amp;rft.volume=4&amp;rft.issue=1&amp;rft.pages=40&amp;rft.date=2004-10&amp;rft_id=https%3A%2F%2Fwww.ncbi.nlm.nih.gov%2Fpmc%2Farticles%2FPMC524487%23id-name%3DPMC&amp;rft_id=info%3Apmid%2F15473911&amp;rft_id=info%3Adoi%2F10.1186%2F1471-2180-4-40&amp;rft.aulast=Patil&amp;rft.aufirst=PB&amp;rft.au=Sonti%2C+RV&amp;rft_id=https%3A%2F%2Fwww.ncbi.nlm.nih.gov%2Fpmc%2Farticles%2FPMC524487&amp;rfr_id=info%3Asid%2Fen.wikipedia.org%3AHorizontal+gene+transfer" class="Z3988"></span></li> <li><link rel="mw-deduplicated-inline-style" href="mw-data:TemplateStyles:r1238218222"><cite id="CITEREFJinNakhlehSnirTuller2006" class="citation journal cs1">Jin G, Nakhleh L, Snir S, Tuller T (November 2006). <a rel="nofollow" class="external text" href="https://doi.org/10.1093%2Fbioinformatics%2Fbtl452">"Maximum likelihood of phylogenetic networks"</a>. <i>Bioinformatics</i>. <b>22</b> (21): 2604–11. <a href="/wiki/Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1093%2Fbioinformatics%2Fbtl452">10.1093/bioinformatics/btl452</a></span>. <a href="/wiki/PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&#160;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/16928736">16928736</a>.</cite><span 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title="Special:EditPage/Template:Genetic recombination"><abbr title="Edit this template">e</abbr></a></li></ul></div><div id="Genetics:_homologous_recombination_/_mobile_genetic_elements" style="font-size:114%;margin:0 4em"><a href="/wiki/Genetics" title="Genetics">Genetics</a>: <a href="/wiki/Homologous_recombination" title="Homologous recombination">homologous recombination</a> / <a href="/wiki/Mobile_genetic_elements" title="Mobile genetic elements">mobile genetic elements</a></div></th></tr><tr><th scope="row" class="navbox-group" style="width:1%">Primarily <a href="/wiki/Prokaryote" title="Prokaryote">prokaryotic</a></th><td class="navbox-list-with-group navbox-list navbox-odd hlist" style="width:100%;padding:0"><div style="padding:0 0.25em"> <ul><li><a href="/wiki/Bacterial_conjugation" title="Bacterial conjugation">Conjugation</a></li> <li><a href="/wiki/Transduction_(genetics)" title="Transduction (genetics)">Transduction</a></li> <li><a href="/wiki/Transformation_(genetics)" class="mw-redirect" title="Transformation (genetics)">Transformation</a></li></ul> </div></td></tr><tr><th scope="row" class="navbox-group" style="width:1%">Occurs in <a href="/wiki/Eukaryote" title="Eukaryote">eukaryotes</a></th><td class="navbox-list-with-group navbox-list navbox-even hlist" style="width:100%;padding:0"><div style="padding:0 0.25em"> <ul><li><a href="/wiki/Transfection" title="Transfection">Transfection</a></li> <li><a href="/wiki/Chromosomal_crossover" title="Chromosomal crossover">Chromosomal crossover</a></li> <li><a href="/wiki/Gene_conversion" title="Gene conversion">Gene conversion</a></li> <li><a href="/wiki/Fusion_gene" title="Fusion gene">Fusion gene</a></li> <li><a class="mw-selflink selflink">Horizontal gene transfer</a></li> <li><a href="/wiki/Sister_chromatid_exchange" title="Sister chromatid exchange">Sister chromatid exchange</a></li> <li><a href="/wiki/Transposable_element" title="Transposable element">Transposon</a></li></ul> </div></td></tr><tr><th 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