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兰肽生物合成中部分修饰的肽中间体改变了兰肽合酶的结构和动力学。

Partially Modified Peptide Intermediates in Lanthipeptide Biosynthesis Alter the Structure and Dynamics of a Lanthipeptide Synthetase.

机构信息

Department of Chemistry, McGill University, 801 Sherbrooke St. West, Montreal, Quebec H3A 0B8, Canada.

出版信息

J Am Chem Soc. 2022 Jun 15;144(23):10230-10240. doi: 10.1021/jacs.2c00727. Epub 2022 Jun 1.

Abstract

Lanthipeptide synthetases construct macrocyclic peptide natural products by catalyzing an iterative cascade of post-translational modifications. Class II lanthipeptide synthetases (LanM enzymes) catalyze multiple rounds of peptide dehydration and thioether macrocycle formation in a manner that guides precursor peptide maturation to the biologically active final product with high fidelity. The mechanistic details underlying the contradictory phenomena of substrate flexibility coupled with high biosynthetic fidelity have proven challenging to illuminate. In this work, we employ mass spectrometry to investigate how the structure of a maturing precursor lanthipeptide (HalA2) influences the local and global structure of its cognate lanthipeptide synthetase (HalM2). Using enzymatically synthesized HalA2 peptides that contain sets of native thioether macrocycles, we employ ion mobility mass spectrometry (IM-MS) to show that HalA2 macrocyclization alters the conformational landscape of the HalM2 enzyme in a systematic manner. Hydrogen-deuterium exchange mass spectrometry (HDX-MS) studies show that local HalM2 structural dynamics also change in response to HalA2 post-translational modification. Notably, deuterium uptake in a critical HalM2 α-helical region depends on the number of thioether macrocycles present in the HalA2 core peptide. Binding of the isolated leader and core peptide portions of the modular HalA2 precursor led to a synergistic structuring of this α-helical region, providing evidence for distinct leader and core peptide binding sites that independently alter the dynamics of this functionally critical α-helix. The data support a mechanistic model where the sequential post-translational modification of HalA2 alters the conformational dynamics of HalM2 in regions of the enzyme that are known to be functionally critical.

摘要

硫肽合酶通过催化一系列翻译后修饰来构建大环肽天然产物。Ⅱ类硫肽合酶(LanM 酶)以一种指导前体肽成熟为具有高保真度的生物活性最终产物的方式,催化多次肽脱水和硫醚大环形成。底物灵活性与高生物合成保真度相结合的矛盾现象背后的机制细节证明具有挑战性。在这项工作中,我们使用质谱法研究成熟前体硫肽(HalA2)的结构如何影响其同源硫肽合酶(HalM2)的局部和整体结构。使用酶合成的含有一系列天然硫醚大环的 HalA2 肽,我们采用离子淌度质谱(IM-MS)表明,HalA2 环化以系统的方式改变 HalM2 酶的构象景观。氢氘交换质谱(HDX-MS)研究表明,局部 HalM2 结构动力学也会响应 HalA2 的翻译后修饰而发生变化。值得注意的是,HalA2 核心肽中存在的硫醚大环的数量决定了 HalM2 中关键α-螺旋区域的氘吸收率。模块化 HalA2 前体的分离的引导肽和核心肽部分的结合导致该α-螺旋区域协同结构化,为独特的引导肽和核心肽结合位点提供了证据,这些结合位点独立地改变了该功能关键α-螺旋的动力学。这些数据支持了一种机制模型,其中 HalA2 的顺序翻译后修饰改变了已知在功能上关键的酶区域中 HalM2 的构象动力学。

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