Structural, biochemical and bioinformatic analyses of nonribosomal peptide synthetase adenylation domains.

IF 10.2 1区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Natural Product Reports Pub Date : 2024-03-15 DOI:10.1039/d3np00064h
Stephanie C Heard, Jaclyn M Winter
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Abstract

Covering: 1997 to July 2023The adenylation reaction has been a subject of scientific intrigue since it was first recognized as essential to many biological processes, including the homeostasis and pathogenicity of some bacteria and the activation of amino acids for protein synthesis in mammals. Several foundational studies on adenylation (A) domains have facilitated an improved understanding of their molecular structures and biochemical properties, in particular work on nonribosomal peptide synthetases (NRPSs). In NRPS pathways, A domains activate their respective acyl substrates for incorporation into a growing peptidyl chain, and many nonribosomal peptides are bioactive. From a natural product drug discovery perspective, improving existing bioinformatics platforms to predict unique NRPS products more accurately from genomic data is desirable. Here, we summarize characterization efforts of A domains primarily from NRPS pathways from July 1997 up to July 2023, covering protein structure elucidation, in vitro assay development, and in silico tools for improved predictions.

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非核糖体肽合成酶腺苷酸化结构域的结构、生物化学和生物信息学分析。
覆盖范围:1997 年至 2023 年 7 月自从人们首次认识到腺苷酸化反应对许多生物过程(包括某些细菌的稳态和致病性以及哺乳动物蛋白质合成中氨基酸的活化)至关重要以来,腺苷酸化反应一直是科学界关注的话题。关于腺苷酸化(A)结构域的几项奠基性研究,特别是关于非核糖体肽合成酶(NRPSs)的研究,促进了人们对其分子结构和生化特性的进一步了解。在非核糖体肽合成酶途径中,A 结构域激活各自的酰基底物,将其纳入不断生长的肽链,许多非核糖体肽都具有生物活性。从天然产物药物发现的角度来看,改进现有的生物信息学平台,以便从基因组数据中更准确地预测独特的 NRPS 产物是可取的。在此,我们总结了从 1997 年 7 月到 2023 年 7 月主要来自 NRPS 途径的 A 结构域的表征工作,包括蛋白质结构阐释、体外检测开发和用于改进预测的硅学工具。
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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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Correction: Biosynthesis, biological activities, and structure-activity relationships of decalin-containing tetramic acid derivatives isolated from fungi. The dichapetalins and dichapetalin-type compounds: structural diversity, bioactivity, and future research perspectives. Biosynthesis, biological activities, and structure-activity relationships of decalin-containing tetramic acid derivatives isolated from fungi. Advances, opportunities, and challenges in methods for interrogating the structure activity relationships of natural products. Back cover
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