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最大化工程化 I 型聚酮合酶的异源表达:探索密码子优化策略。

Maximizing Heterologous Expression of Engineered Type I Polyketide Synthases: Investigating Codon Optimization Strategies.

机构信息

Joint BioEnergy Institute, 5885 Hollis Street, Emeryville, California 94608, United States.

Biological Systems & Engineering Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

出版信息

ACS Synth Biol. 2023 Nov 17;12(11):3366-3380. doi: 10.1021/acssynbio.3c00367. Epub 2023 Oct 18.

Abstract

Type I polyketide synthases (T1PKSs) hold enormous potential as a rational production platform for the biosynthesis of specialty chemicals. However, despite great progress in this field, the heterologous expression of PKSs remains a major challenge. One of the first measures to improve heterologous gene expression can be codon optimization. Although controversial, choosing the wrong codon optimization strategy can have detrimental effects on the protein and product levels. In this study, we analyzed 11 different codon variants of an engineered T1PKS and investigated in a systematic approach their influence on heterologous expression in , , and . Our best performing codon variants exhibited a minimum 50-fold increase in PKS protein levels, which also enabled the production of an unnatural polyketide in each of these hosts. Furthermore, we developed a free online tool (https://basebuddy.lbl.gov) that offers transparent and highly customizable codon optimization with up-to-date codon usage tables. In this work, we not only highlight the significance of codon optimization but also establish the groundwork for the high-throughput assembly and characterization of PKS pathways in alternative hosts.

摘要

I 型聚酮合酶(T1PKSs)在作为合理的特种化学品生物合成生产平台方面具有巨大潜力。然而,尽管在该领域取得了巨大进展,PKS 的异源表达仍然是一个主要挑战。提高异源基因表达的第一步措施之一可以是密码子优化。尽管存在争议,但选择错误的密码子优化策略会对蛋白质和产物水平产生不利影响。在这项研究中,我们分析了工程 T1PKS 的 11 种不同的密码子变体,并以系统的方式研究了它们对 、 、 和 中的异源表达的影响。表现最佳的密码子变体使 PKS 蛋白水平提高了至少 50 倍,这也使得在这些宿主中的每一个中都能够生产出一种非天然的聚酮。此外,我们开发了一个免费的在线工具(https://basebuddy.lbl.gov),该工具提供透明且高度可定制的密码子优化以及最新的密码子使用表。在这项工作中,我们不仅强调了密码子优化的重要性,还为在替代宿主中高通量组装和表征 PKS 途径奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df47/10661030/e007facd5b71/sb3c00367_0001.jpg

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