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离子淌度-质谱分析交联完整多蛋白复合物:增强的气相稳定性和改变的解离途径。

Ion Mobility-Mass Spectrometry Analysis of Cross-Linked Intact Multiprotein Complexes: Enhanced Gas-Phase Stabilities and Altered Dissociation Pathways.

机构信息

Departments of †Chemistry, ‡Biological Chemistry, and §Computational Medicine and Bioinformatics, University of Michigan , Ann Arbor, Michigan 48109, United States.

出版信息

Anal Chem. 2016 May 17;88(10):5290-8. doi: 10.1021/acs.analchem.6b00518. Epub 2016 May 2.

Abstract

Analysis of protein complexes by ion mobility-mass spectrometry is a valuable method for the rapid assessment of complex composition, binding stoichiometries, and structures. However, capturing labile, unknown protein assemblies directly from cells remains a challenge for the technology. Furthermore, ion mobility-mass spectrometry measurements of complexes, subcomplexes, and subunits are necessary to build complete models of intact assemblies, and such data can be difficult to acquire in a comprehensive fashion. Here, we present the use of novel mass spectrometry cleavable cross-linkers and tags to stabilize intact protein complexes for ion mobility-mass spectrometry. Our data reveal that tags and linkers bearing permanent charges are superior stabilizers relative to neutral cross-linkers, especially in the context of retaining compact forms of the assembly under a wide array of activating conditions. In addition, when cross-linked protein complexes are collisionally activated in the gas phase, a larger proportion of the product ions produced are often more compact and reflect native protein subcomplexes when compared with unmodified complexes activated in the same fashion, greatly enabling applications in structural biology.

摘要

通过离子淌度-质谱分析蛋白质复合物是一种快速评估复合物组成、结合化学计量比和结构的有价值的方法。然而,直接从细胞中捕获不稳定的未知蛋白质组装仍然是该技术的一个挑战。此外,为了构建完整的组装体完整模型,有必要对复合物、亚复合物和亚基进行离子淌度-质谱测量,而这种数据很难全面获取。在这里,我们提出了使用新型质谱可裂解交联剂和标签来稳定完整的蛋白质复合物进行离子淌度-质谱分析。我们的数据表明,带有永久电荷的标签和交联剂相对于中性交联剂是更好的稳定剂,特别是在保留广泛激活条件下组装的紧凑形式方面。此外,当交联的蛋白质复合物在气相中发生碰撞激活时,与以相同方式激活的未修饰复合物相比,产生的产物离子中通常有更大比例的产物离子更为紧凑,并且反映了天然蛋白质亚基,这极大地促进了结构生物学中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fca/5164941/3cf9d390b636/nihms834934f1.jpg

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