基于三氧杂蒽的可交联质谱剖析细胞网络的多聚物相互作用

Clinton Yu, Eric Novitsky, Xiaorong Wang, Ignacia Echeverria, Scott Rychnovsky, Lan Huang
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引用次数: 0

摘要

交联质谱(XL-MS)是在系统水平上绘制蛋白质-蛋白质相互作用(PPIs)图谱的一项强大技术。通过共价连接成对的近端残基,交联试剂可提供距离限制,从而推断蛋白质构象和相互作用界面。虽然二元交联具有显著的信息量,但多聚交联可提供更高的空间分辨率,从而促进动态和异质蛋白质复合物的表征。然而,由于片段的复杂性和数据库搜索空间的巨大扩展,多聚交联的鉴定仍然极具挑战性。在这里,我们提出了一种新型的基于三氧杂蒽的 MS 可裂解同源三官能交联剂 TSTO,它可以同时靶向三个近端赖氨酸残基。由于其独特的结构和 MS 可裂解性,TSTO 可通过 LC-MSn 分析快速、准确地鉴定交联肽。重要的是,我们已经证明,基于 TSTO 的 XL-MS 平台可有效绘制蛋白质复合物和细胞网络的 PPIs 图谱。TSTO 捕捉到的三聚体相互作用发现了现有试剂难以揭示的新结构细节,从而可以深入描述 PPIs,促进结构建模。这项研发不仅推动了 XL-MS 技术在活细胞中进行全球 PPI 分析,而且为创造多功能 MS 可溶解交联剂提供了新的方向,从而在未来进一步推动结构系统生物学的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Trioxane-based MS-cleavable Cross-linking Mass Spectrometry for Profiling Multimeric Interactions of Cellular Networks
Cross-linking mass spectrometry (XL-MS) is a powerful technology for mapping protein-protein interactions (PPIs) at the systems-level. By covalently connecting pairs of proximal residues, cross-linking reagents provide distance restraints to infer protein conformations and interaction interfaces. While binary cross-links have been remarkably informative, multimeric cross-links can offer enhanced spatial resolution to facilitate the characterization of dynamic and heterogeneous protein complexes. However, the identification of multimeric cross-links remains extremely challenging due to fragmentation complexity and the vast expansion of database search space. Here, we present a novel trioxane-based MS-cleavable homotrifunctional cross-linker TSTO, which can target three proximal lysine residues simultaneously. Owing to its unique structure and MS-cleavability, TSTO enables fast and unambiguous identification of cross-linked peptides using LC-MSn analysis. Importantly, we have demonstrated that the TSTO-based XL-MS platform is effective for mapping PPIs of protein complexes and cellular networks. The trimeric interactions captured by TSTO have uncovered new structural details that cannot be easily revealed by existing reagents, allowing in-depth description of PPIs to facilitate structural modeling. This development not only advances XL-MS technologies for global PPI profiling from living cells, but also offers a new direction for creating multifunctional MS-cleavable cross-linkers to further push structural systems biology forward in the future.
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