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通过天然质谱法剖析蛋白质的结构异质性。

Dissecting the structural heterogeneity of proteins by native mass spectrometry.

机构信息

Chemical and Biological Signature Sciences, Pacific Northwest National Laboratory, Richland, Washington, USA.

Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory, Richland, Washington, USA.

出版信息

Protein Sci. 2023 Apr;32(4):e4612. doi: 10.1002/pro.4612.

Abstract

A single gene yields many forms of proteins via combinations of posttranscriptional/posttranslational modifications. Proteins also fold into higher-order structures and interact with other molecules. The combined molecular diversity leads to the heterogeneity of proteins that manifests as distinct phenotypes. Structural biology has generated vast amounts of data, effectively enabling accurate structural prediction by computational methods. However, structures are often obtained heterologously under homogeneous states in vitro. The lack of native heterogeneity under cellular context creates challenges in precisely connecting the structural data to phenotypes. Mass spectrometry (MS) based proteomics methods can profile proteome composition of complex biological samples. Most MS methods follow the "bottom-up" approach, which denatures and digests proteins into short peptide fragments for ease of detection. Coupled with chemical biology approaches, higher-order structures can be probed via incorporation of covalent labels on native proteins that are maintained at the peptide level. Alternatively, native MS follows the "top-down" approach and directly analyzes intact proteins under nondenaturing conditions. Various tandem MS activation methods can dissect the intact proteins for in-depth structural elucidation. Herein, we review recent native MS applications for characterizing heterogeneous samples, including proteins binding to mixtures of ligands, homo/hetero-complexes with varying stoichiometry, intrinsically disordered proteins with dynamic conformations, glycoprotein complexes with mixed modification states, and active membrane protein complexes in near-native membrane environments. We summarize the benefits, challenges, and ongoing developments in native MS, with the hope to demonstrate an emerging technology that complements other tools by filling the knowledge gaps in understanding the molecular heterogeneity of proteins.

摘要

单个基因通过转录后/翻译后修饰的组合产生多种形式的蛋白质。蛋白质还会折叠成更高级的结构,并与其他分子相互作用。这种综合的分子多样性导致了蛋白质的异质性,表现为不同的表型。结构生物学已经产生了大量的数据,有效地使计算方法能够进行准确的结构预测。然而,结构通常是在体外均相状态下异源获得的。在细胞环境中缺乏天然的异质性,给将结构数据与表型精确联系起来带来了挑战。基于质谱(MS)的蛋白质组学方法可以对复杂生物样本的蛋白质组组成进行分析。大多数 MS 方法遵循“自上而下”的方法,将蛋白质变性并消化成短肽片段,以便于检测。结合化学生物学方法,可以通过在保持在肽水平的天然蛋白质上引入共价标记来探测高级结构。或者,原生 MS 遵循“自上而下”的方法,在非变性条件下直接分析完整的蛋白质。各种串联 MS 激活方法可以用于对完整蛋白质进行分析,以进行深入的结构阐明。本文综述了近年来用于分析异质样品的原生 MS 应用,包括与混合配体结合的蛋白质、具有不同化学计量比的同/异源复合物、具有动态构象的固有无序蛋白质、具有混合修饰状态的糖蛋白复合物以及在近天然膜环境中具有活性的膜蛋白复合物。我们总结了原生 MS 的优势、挑战和正在进行的发展,希望展示一种新兴技术,通过填补理解蛋白质分子异质性的知识空白,与其他工具互补。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f8c4/10031758/9f60c018a457/PRO-32-e4612-g001.jpg

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