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沙利奈肽:来自大盐湖链霉菌的整合基因组和化学方法揭示了不寻常的含有 d-氨基酸的核糖体合成和翻译后修饰肽(RiPPs)

Salinipeptins: Integrated Genomic and Chemical Approaches Reveal Unusual d-Amino Acid-Containing Ribosomally Synthesized and Post-Translationally Modified Peptides (RiPPs) from a Great Salt Lake Streptomyces sp.

机构信息

Center for Marine Biotechnology and Biomedicine, Scripps Institution of Oceanography , University of California , La Jolla, San Diego , California 92093-0204 , United States.

Department of Medicinal Chemistry , University of Utah , Salt Lake City , Utah 84112 , United States.

出版信息

ACS Chem Biol. 2019 Mar 15;14(3):415-425. doi: 10.1021/acschembio.8b01058. Epub 2019 Feb 26.

Abstract

Analysis of the full genome of an environmentally unique, halotolerant Streptomyces sp. strain GSL-6C, isolated from the Great Salt Lake, revealed a gene cluster encoding the biosynthesis of the salinipeptins, d-amino-acid-containing members of the rare linaridin subfamily of ribosomally synthesized and post-translationally modified peptides (RiPPs). The sequence organization of the unmodified amino acid residues in salinipeptins A-D (1-4) were suggested by genome annotation, and subsequently, their sequence and post-translational modifications were defined using a range of spectroscopic techniques and chemical derivatization approaches. The salinipeptins are unprecedented linaridins bearing nine d-amino acids, which are uncommon in RiPP natural products and are the first reported in the linaridin subfamily. Whole genome mining of GSL-6C did not reveal any homologues of the reported genes responsible for amino acid epimerization in RiPPs, inferring new epimerases may be involved in the conversion of l- to d-amino acids. In addition, the N-oxide and dimethylimidazolidin-4-one moieties in salinipeptins B and C, which are modified from N, N-dimethylalanine, are unknown in bacterial peptides. The three-dimensional structure of salinipeptin A, possessing four loops generated by significant hydrogen bonding, was established on the basis of observed nuclear Overhauser effect (NOE) correlations. This study demonstrates that integration of genomic information early in chemical analysis significantly facilitates the discovery and structure characterization of novel microbial secondary metabolites.

摘要

从大盐湖中分离到的耐盐性独特的链霉菌 GSL-6C 的全基因组分析表明,存在一个基因簇,编码 salinipeptins 的生物合成,salinipeptins 是一种含有 D-氨基酸的稀有线性素亚家族的核糖体合成和翻译后修饰肽(RiPPs)。通过基因组注释,提出了 salinipeptin A-D(1-4)中未修饰氨基酸残基的序列组织,随后使用一系列光谱技术和化学衍生化方法确定了它们的序列和翻译后修饰。Salinipeptins 是前所未有的线性素,含有九个 D-氨基酸,这在 RiPP 天然产物中很少见,是在线性素亚家族中首次报道的。对 GSL-6C 的全基因组挖掘并未发现报道的 RiPP 中负责氨基酸差向异构化的基因的任何同源物,这表明可能涉及新的差向异构酶来将 L-到 D-氨基酸转化。此外,salinipeptin B 和 C 中 N-氧化物和二甲基咪唑烷-4-酮部分修饰自 N,N-二甲基丙氨酸,这在细菌肽中是未知的。根据观察到的核 Overhauser 效应(NOE)相关,建立了具有四个由氢键显著生成的环的 salinipeptin A 的三维结构。本研究表明,在化学分析早期整合基因组信息可显著促进新型微生物次生代谢产物的发现和结构表征。

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