真菌非核糖体肽生物合成工程

IF 10.6 1区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Liwen Zhang , Chen Wang , Kang Chen , Weimao Zhong , Yuquan Xu , István Molnár
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引用次数: 5

摘要

涵盖范围:2011年至2021年底。真菌非核糖体肽(NRPs)和相关的聚酮-非核糖体肽杂交产物(PK–NRPs)是生物活性化合物的丰富来源,其中一些已被开发成基本药物。这些复杂天然产物(NP)的合成利用非核糖体肽合成酶(NRPS),这是一种多结构域的巨型酶,通过氨基酸和氨基酸样物质的顺序缩合组装特定的肽产物,与核糖体无关。NRPS、协同聚酮合酶模块及其参与产品成熟的相关剪裁酶是NP结构多样化和产生具有改进或新生物活性的小分子非天然产物(uNP)的有前途的靶点。事实上,NRPS的重新编程和新型定制酶的招募是自然界进化NRP产物的策略。近年来,新型NRP和PK–NRP的发现和鉴定取得了快速发展,真菌NRP装配线的工程化也取得了重大进展,以产生uNP肽。然而,真菌NRP和PK–NRP生物合成的内在复杂性,以及NRPS的巨大规模,仍然为这些途径的合理有效重新编程带来了巨大的概念和技术挑战。这篇综述考察了成功(以及一些不太成功)重新设计真菌NRPS装配线的关键例子,为未来生产新型生物活性肽和PK–NRP的努力提供信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Engineering the biosynthesis of fungal nonribosomal peptides

Engineering the biosynthesis of fungal nonribosomal peptides

Covering: 2011 up to the end of 2021.

Fungal nonribosomal peptides (NRPs) and the related polyketide–nonribosomal peptide hybrid products (PK–NRPs) are a prolific source of bioactive compounds, some of which have been developed into essential drugs. The synthesis of these complex natural products (NPs) utilizes nonribosomal peptide synthetases (NRPSs), multidomain megaenzymes that assemble specific peptide products by sequential condensation of amino acids and amino acid-like substances, independent of the ribosome. NRPSs, collaborating polyketide synthase modules, and their associated tailoring enzymes involved in product maturation represent promising targets for NP structure diversification and the generation of small molecule unnatural products (uNPs) with improved or novel bioactivities. Indeed, reprogramming of NRPSs and recruiting of novel tailoring enzymes is the strategy by which nature evolves NRP products. The recent years have witnessed a rapid development in the discovery and identification of novel NRPs and PK–NRPs, and significant advances have also been made towards the engineering of fungal NRP assembly lines to generate uNP peptides. However, the intrinsic complexities of fungal NRP and PK–NRP biosynthesis, and the large size of the NRPSs still present formidable conceptual and technical challenges for the rational and efficient reprogramming of these pathways. This review examines key examples for the successful (and for some less-successful) re-engineering of fungal NRPS assembly lines to inform future efforts towards generating novel, biologically active peptides and PK–NRPs.

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来源期刊
Natural Product Reports
Natural Product Reports 化学-生化与分子生物学
CiteScore
21.20
自引率
3.40%
发文量
127
审稿时长
1.7 months
期刊介绍: Natural Product Reports (NPR) serves as a pivotal critical review journal propelling advancements in all facets of natural products research, encompassing isolation, structural and stereochemical determination, biosynthesis, biological activity, and synthesis. With a broad scope, NPR extends its influence into the wider bioinorganic, bioorganic, and chemical biology communities. Covering areas such as enzymology, nucleic acids, genetics, chemical ecology, carbohydrates, primary and secondary metabolism, and analytical techniques, the journal provides insightful articles focusing on key developments shaping the field, rather than offering exhaustive overviews of all results. NPR encourages authors to infuse their perspectives on developments, trends, and future directions, fostering a dynamic exchange of ideas within the natural products research community.
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