{"id":11544,"date":"2026-04-24T18:22:36","date_gmt":"2026-04-24T18:22:36","guid":{"rendered":"https:\/\/globalnewstoday.uk\/index.php\/2026\/04\/24\/condensation-independent-intramodular-translocation-mechanism-of-the-trans-at-polyketide-synthase-assembly-line-nature\/"},"modified":"2026-04-24T18:22:36","modified_gmt":"2026-04-24T18:22:36","slug":"condensation-independent-intramodular-translocation-mechanism-of-the-trans-at-polyketide-synthase-assembly-line-nature","status":"publish","type":"post","link":"https:\/\/globalnewstoday.uk\/index.php\/2026\/04\/24\/condensation-independent-intramodular-translocation-mechanism-of-the-trans-at-polyketide-synthase-assembly-line-nature\/","title":{"rendered":"Condensation-independent intramodular translocation mechanism of the trans- AT polyketide synthase assembly line &#8211; Nature"},"content":{"rendered":"<p>Thank you for visiting nature.com. You are using a browser version with limited support for CSS. To obtain             the best experience, we recommend you use a more up to date browser (or turn off compatibility mode in             Internet Explorer). In the meantime, to ensure continued support, we are displaying the site without styles             and JavaScript.<br \/>Advertisement<br \/>                              <a data-test=\"journal-link\" href=\"\/nchembio\" data-track=\"click\" data-track-action=\"journal homepage\" data-track-category=\"article body\" data-track-label=\"link\"><i data-test=\"journal-title\">Nature Chemical Biology<\/i><\/a>                           (<span data-test=\"article-publication-year\">2026<\/span>)<a href=\"#citeas\" class=\"c-article-info-details__cite-as u-hide-print\" data-track=\"click\" data-track-action=\"cite this article\" data-track-label=\"link\">Cite this article<\/a>                     <br \/>Decarboxylative condensation drives chain elongation and translocation of polyketides and fatty acids. However, the mechanism by which nonelongating modules in <i>trans<\/i>-acyltransferase polyketide synthases (<i>trans<\/i>-AT PKSs) enable intramodular polyketide chain translocation without decarboxylation remains poorly understood. Here we elucidate a condensation-independent intramodular translocation mechanism in which KS<sup>0<\/sup> within the nonelongating module operates as a transacylase, directly translocating the polyketide chain to its downstream cognate acyl carrier protein (ACP). Notably, the inherent demalonylation activity of <i>trans-<\/i>AT<sub>HtmA7<\/sub> facilitates efficient ACP recycling ensuring intramodular translocation. Structural modeling and site-directed mutagenesis studies uncover a conserved KS<sup>0<\/sup>\u2013ACP binding mode that underpins intramodular translocation across diverse nonelongating modules. Additionally, the strict discrimination of polyketide intermediate by the nonelongating module highlights its critical role in maintaining biosynthetic precision and efficiency. These findings provide mechanistic insights into evolutionary adaptation and sophisticated crosstalk between catalytic domains within <i>trans<\/i>-AT PKS, illuminating how metabolic flux and fidelity are maintained and opening avenues for polyketide engineering.<br \/>This is a preview of subscription content, <a href=\"https:\/\/wayf.springernature.com?redirect_uri&#x3D;https%3A%2F%2Fwww.nature.com%2Farticles%2Fs41589-026-02209-x\" data-track=\"click_institution_login\" data-track-context=\"article body link\"                          data-track-action=\"institution access preview subscription\" data-track-label=\"link\">access via your institution<\/a><br \/>         Access Nature and 54 other Nature Portfolio journals       <br \/>         Get Nature+, our best-value online-access subscription       <br \/>           <span class=\"price-value\">27,99\u00a0\u20ac<span class=\"price-per-period\" style=\"font-size: 0.9rem\"> \/\u00a030\u00a0days<\/span><\/span>         <br \/>cancel any time<br \/>Subscribe to this journal<br \/>         Receive 12 print issues and online access       <br \/>276,54\u00a0\u20ac per year<br \/>only 23,05 \u20ac per issue<br \/>Buy this article<br \/><span class=\"price-value\">39,95 \u20ac<\/span><br \/>Prices may be subject to local taxes which are calculated during checkout<br \/>All data supporting the findings of this study are available in the main paper and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"section anchor\" href=\"\/articles\/s41589-026-02209-x#Sec33\">Supplementary Information<\/a>. Protein structural models were generated using AlphaFold version 3.0.1 and the corresponding structures and molecular dynamics simulations files are provided in Supplementary Data <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"\/articles\/s41589-026-02209-x#MOESM4\">2<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"\/articles\/s41589-026-02209-x#MOESM5\">3<\/a>. Additional materials, including plasmids and primers, are available from the corresponding authors upon reasonable request.<br \/>Cortes, J., Haydock, S. F., Roberts, G. A., Bevitt, D. J. &amp; Leadlay, P. F. 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scholar\" data-track-label=\"link\" rel=\"nofollow\">Google Scholar<\/a><\/span><br \/><span class=\"c-article-authors-search__links-text\">Search author on:<\/span><span class=\"c-article-identifiers\"><a class=\"c-article-identifiers__item\" href=\"https:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=search&amp;term=Guifa%20Zhai\" data-track=\"click\" data-track-action=\"author link - pubmed\" data-track-label=\"link\" rel=\"nofollow\">PubMed<\/a><span class=\"u-hide\">\u00a0<\/span><a class=\"c-article-identifiers__item\" href=\"https:\/\/scholar.google.co.uk\/scholar?as_q=&amp;num=10&amp;btnG=Search+Scholar&amp;as_epq=&amp;as_oq=&amp;as_eq=&amp;as_occt=any&amp;as_sauthors=%22Guifa%20Zhai%22&amp;as_publication=&amp;as_ylo=&amp;as_yhi=&amp;as_allsubj=all&amp;hl=en\" data-track=\"click\" data-track-action=\"author link - scholar\" data-track-label=\"link\" rel=\"nofollow\">Google Scholar<\/a><\/span><br \/><span class=\"c-article-authors-search__links-text\">Search author on:<\/span><span class=\"c-article-identifiers\"><a class=\"c-article-identifiers__item\" href=\"https:\/\/www.ncbi.nlm.nih.gov\/entrez\/query.fcgi?cmd=search&amp;term=Yuhui%20Sun\" data-track=\"click\" data-track-action=\"author link - pubmed\" data-track-label=\"link\" rel=\"nofollow\">PubMed<\/a><span class=\"u-hide\">\u00a0<\/span><a class=\"c-article-identifiers__item\" href=\"https:\/\/scholar.google.co.uk\/scholar?as_q=&amp;num=10&amp;btnG=Search+Scholar&amp;as_epq=&amp;as_oq=&amp;as_eq=&amp;as_occt=any&amp;as_sauthors=%22Yuhui%20Sun%22&amp;as_publication=&amp;as_ylo=&amp;as_yhi=&amp;as_allsubj=all&amp;hl=en\" data-track=\"click\" data-track-action=\"author link - scholar\" data-track-label=\"link\" rel=\"nofollow\">Google Scholar<\/a><\/span><br \/>Z.G. and G.Z. designed the experiments and wrote the paper. S.W. designed and constructed the mutants. X.W. synthesized the substrate mimics. G.L. performed the computational calculations. M.L., Y.D. and G.S. identified the structures of HTM. Z.D. analyzed the data and revised the paper. Y.S. and G.Z. conceptualized the overall project, analyzed the data and revised the paper.<br \/>Correspondence to                 <a id=\"corresp-c1\" aria-label=\"email Guifa Zhai\" href=\"mailto:gfzhai@hust.edu.cn\">Guifa Zhai<\/a> or <a id=\"corresp-c2\" aria-label=\"email Yuhui Sun\" href=\"mailto:yhsun@whu.edu.cn\">Yuhui Sun<\/a>.<br \/>The authors declare no competing interests.<br \/><i>Nature Chemical Biology<\/i> thanks the anonymous reviewers for their contribution to the peer review of this work.<br \/><b>Publisher\u2019s note<\/b> Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.<br \/><b>a<\/b>, Schematics of intermodular translocation, intramodular translocation and intermodular retrotranslocation. <b>b-d<\/b>, <i>In vitro<\/i> reconstitution of retrotranslocation of <span class=\"mathjax-tex\">({{rm{KS}}}_{4}^{0})<\/span> -ATd<sub><s>4<\/s><\/sub> with upstream <i>holo-<\/i>ACP<sub>3<\/sub> (<b>b<\/b>), <span class=\"mathjax-tex\">({{rm{KS}}}_{3}^{0})<\/span> with upstream <i>holo-<\/i>ACP<sub>2<\/sub> (<b>c<\/b>) and KS<sub>2<\/sub>-ATd<sub>2<\/sub> with upstream <i>holo-<\/i>ACP<sub>1<\/sub> (<b>d<\/b>). These assays were monitored by LC-ESI-HRMS and the results were deconvoluted. Each experiment was performed with three biological replicates, yielding similar results. Asterisk indicates that the corresponding protein is not detected.<br \/>In canonical PKS modules, ACPs typically adopt two distinct binding modes with KS domains: one for intramodular elongation with the upstream KS, and another for intermodular translocation with the downstream KS. By contrast, ACPs in non-elongating modules 3 and 4 adopt a unified binding mode compatible with their cognate KS<sup>0<\/sup> and the upstream ACP. This structural adaptation facilitates the unique intramodular translocation process characteristic of these modules.<br \/><b>a<\/b>, Functional characterization of the dehydratase domain DH<sub>3<\/sub>. <b>b<\/b>, Functional investigation of <span class=\"mathjax-tex\">({{rm{KS}}}_{4}^{0})<\/span> in mediating intermodular polyketide chain translocation. These assays were monitored by LC-ESI-HRMS and the results were deconvoluted. Each experiment was performed with three biological replicates, yielding similar results. Asterisk indicates that the corresponding protein is not detected.<br \/>Supplementary Figs. 1\u201375 and Methods.<br \/>Mass spectrometry data.<br \/>Structures of AlphaFold-generated proteins in PDB format.<br \/>Molecular dynamics simulation files.<br \/>Source data for Supplementary Fig. 21.<br \/>Lists of primers, strains and plasmids used in this study.<br \/>Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law.<br \/><a data-track=\"click\" data-track-action=\"view rights and permissions\" data-track-label=\"link\" href=\"https:\/\/s100.copyright.com\/AppDispatchServlet?title=Condensation-independent%20intramodular%20translocation%20mechanism%20of%20the%20trans-AT%20polyketide%20synthase%20assembly%20line&amp;author=Zhicheng%20Guo%20et%20al&amp;contentID=10.1038%2Fs41589-026-02209-x&amp;copyright=The%20Author%28s%29%2C%20under%20exclusive%20licence%20to%20Springer%20Nature%20America%2C%20Inc.&amp;publication=1552-4450&amp;publicationDate=2026-04-24&amp;publisherName=SpringerNature&amp;orderBeanReset=true\">Reprints and permissions<\/a><br \/>Guo, Z., Wu, S., Wang, X. <i>et al.<\/i> Condensation-independent intramodular translocation mechanism of the <i>trans-<\/i>AT polyketide synthase assembly line.                     <i>Nat Chem Biol<\/i>  (2026). https:\/\/doi.org\/10.1038\/s41589-026-02209-x<br \/><a data-test=\"citation-link\" data-track=\"click\" data-track-action=\"download article citation\" data-track-label=\"link\" data-track-external=\"\" rel=\"nofollow\" href=\"https:\/\/citation-needed.springer.com\/v2\/references\/10.1038\/s41589-026-02209-x?format=refman&amp;flavour=citation\">Download citation<svg width=\"16\" height=\"16\" focusable=\"false\" role=\"img\" aria-hidden=\"true\" class=\"u-icon\"><use xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\" xlink:href=\"#icon-eds-i-download-medium\"><\/use><\/svg><\/a><br \/>Received<span class=\"u-hide\">: <\/span><span class=\"c-bibliographic-information__value\"><time datetime=\"2025-06-06\">06 June 2025<\/time><\/span><br \/>Accepted<span class=\"u-hide\">: <\/span><span class=\"c-bibliographic-information__value\"><time datetime=\"2026-03-25\">25 March 2026<\/time><\/span><br \/>Published<span class=\"u-hide\">: <\/span><span class=\"c-bibliographic-information__value\"><time datetime=\"2026-04-24\">24 April 2026<\/time><\/span><br \/>Version of record<span class=\"u-hide\">: <\/span><span class=\"c-bibliographic-information__value\"><time datetime=\"2026-04-24\">24 April 2026<\/time><\/span><br \/><abbr title=\"Digital Object Identifier\">DOI<\/abbr><span class=\"u-hide\">: <\/span><span class=\"c-bibliographic-information__value\">https:\/\/doi.org\/10.1038\/s41589-026-02209-x<\/span><br \/>Anyone you share the following link with will be able to read this content:<br \/>Sorry, a shareable link is not currently available for this article.<\/p>\n<p>                             Provided by the Springer Nature SharedIt content-sharing initiative                         <br \/>Advertisement<br \/>                     <span itemprop=\"name\">                         Nature Chemical Biology                     <\/span>                     (<i itemprop=\"alternateName\">Nat Chem Biol<\/i>)                 <br \/>             <abbr title=\"International Standard Serial Number\">ISSN<\/abbr> <span itemprop=\"issn\">1552-4469<\/span> (online)         <br \/>             <abbr title=\"International Standard Serial Number\">ISSN<\/abbr> <span itemprop=\"issn\">1552-4450<\/span> (print)         <br \/>&copy; 2026 Springer Nature Limited<br \/>Sign up for the <em>Nature Briefing<\/em> newsletter \u2014 what matters in science, free to your inbox daily.<\/p>\n<p><a href=\"https:\/\/news.google.com\/rss\/articles\/CBMiX0FVX3lxTE16ajZBS21KZFFCZ3p1RThwNy12cTNGUGVSaDRueU0zZXNBS19kb0w3VlE3b0FUWXNKMlJXWkpjNHpSRXZpc0RoZzB5Q3pBRUEwUk1yYW9Hbkx4R3ZxeG5r?oc=5\">source<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Thank you for visiting nature.com. 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