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固相兼容的硅烷类可切割连接子实现定制等压定量化学蛋白质组学。

Solid-Phase Compatible Silane-Based Cleavable Linker Enables Custom Isobaric Quantitative Chemoproteomics.

机构信息

Department of Biological Chemistry, David Geffen School of Medicine, University of California, Los Angeles, Los Angeles, California 90095, United States.

Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, California 90095, United States.

出版信息

J Am Chem Soc. 2023 Oct 4;145(39):21303-21318. doi: 10.1021/jacs.3c05797. Epub 2023 Sep 22.

Abstract

Mass spectrometry-based chemoproteomics has emerged as an enabling technology for functional biology and drug discovery. To address limitations of established chemoproteomics workflows, including cumbersome reagent synthesis and low throughput sample preparation, here, we established the silane-based cleavable isotopically labeled proteomics (sCIP) method. The sCIP method is enabled by a high yielding and scalable route to dialkoxydiphenylsilane fluorenylmethyloxycarbonyl (DADPS-Fmoc)-protected amino acid building blocks, which enable the facile synthesis of customizable, isotopically labeled, and chemically cleavable biotin capture reagents. sCIP is compatible with both MS1- and MS2-based quantitation, and the sCIP-MS2 method is distinguished by its click-assembled isobaric tags in which the reporter group is encoded in the sCIP capture reagent and balancer in the pan cysteine-reactive probe. The sCIP-MS2 workflow streamlines sample preparation with early stage isobaric labeling and sample pooling, allowing for high coverage and increased sample throughput via customized low cost six-plex sample multiplexing. When paired with a custom FragPipe data analysis workflow and applied to cysteine-reactive fragment screens, sCIP proteomics revealed established and unprecedented cysteine-ligand pairs, including the discovery that mitochondrial uncoupling agent FCCP acts as a covalent-reversible cysteine-reactive electrophile.

摘要

基于质谱的化学蛋白质组学已成为功能生物学和药物发现的一项重要技术。为了解决已建立的化学蛋白质组学工作流程的局限性,包括繁琐的试剂合成和低通量的样品制备,我们在这里建立了基于硅烷的可裂解同位素标记蛋白质组学(sCIP)方法。sCIP 方法得益于高产和可扩展的路线来合成二烷氧基二苯基硅烷芴甲氧羰基(DADPS-Fmoc)保护的氨基酸砌块,这使得定制、同位素标记和化学可裂解的生物素捕获试剂的合成变得容易。sCIP 与基于 MS1 和 MS2 的定量兼容,sCIP-MS2 方法的特点是其点击组装的等摩尔标记物,其中报告基团编码在 sCIP 捕获试剂中,平衡基团在泛半胱氨酸反应探针中。sCIP-MS2 工作流程通过早期的等摩尔标记和样品混合简化了样品制备,允许通过定制的低成本六重样品多路复用实现高覆盖率和增加的样品通量。当与自定义的 FragPipe 数据分析工作流程结合并应用于半胱氨酸反应片段筛选时,sCIP 蛋白质组学揭示了已建立的和前所未有的半胱氨酸配体对,包括发现线粒体解偶联剂 FCCP 作为一种共价可逆的半胱氨酸反应亲电试剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c08a/11895830/a402fc461ff5/nihms-2055564-f0001.jpg

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