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Global kinetic analysis of proteolysis via quantitative targeted proteomics

机译:通过定量靶向蛋白质组学进行蛋白水解的全局动力学分析

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摘要

Mass spectrometry-based proteomics is a powerful tool for identifying hundreds to thousands of posttranslational modifications in complex mixtures. However, it remains enormously challenging to simultaneously assess the intrinsic catalytic efficiencies (k_(cat)/K_M) of these modifications in the context of their natural interactors. Such fundamental enzymological constants are key to determining substrate specificity and for establishing the timing and importance of cellular signaling. Here, we report the use of selected reaction monitoring (SRM) for tracking proteolysis induced by human apoptotic caspases-3, -7, -8, and -9 in lysates and living cells. By following the appearance of the cleaved peptides in lysate as a function of time, we were able to determine hundreds of catalytic efficiencies in parallel. Remarkably, we find the rates of substrate hydrolysis for individual caspases vary greater than 500-fold indicating a sequential process. Moreover, the rank-order of substrate cutting is similar in apoptotic cells, suggesting that cellular structures do not dramatically alter substrate accessibility. Comparisons of extrinsic (TRAIL) and intrinsic (staurosporine) inducers of apoptosis revealed similar substrate profiles, suggesting the final proteolytic demolitions proceed by similarly ordered plans. Certain biological processes were rapidly targeted by the caspases, including multiple components of the endocyotic pathway and miRNA processing machinery. We believe this massively parallel and quantitative label-free approach to obtaining basic enzymological constants will facilitate the study of proteolysis and other posttranslational modifications in complex mixtures.
机译:基于质谱的蛋白质组学是一种功能强大的工具,可用于识别复杂混合物中数百至数千个翻译后修饰。然而,在它们的天然相互作用物的背景下同时评估这些修饰的固有催化效率(k_(cat)/ K_M)仍然是巨大的挑战。这种基本的酶学常数是确定底物特异性以及确定细胞信号传导的时机和重要性的关键。在这里,我们报告使用选定的反应监测(SRM)来跟踪由人凋亡的胱天蛋白酶3,-7,-8和-9在裂解液和活细胞中诱导的蛋白水解。通过追踪裂解肽在裂解物中的出现随时间的变化,我们能够并行测定数百种催化效率。值得注意的是,我们发现单个半胱天冬酶的底物水解速率变化大于500倍,表明该过程是连续的。此外,凋亡细胞中底物切割的顺序相似,这表明细胞结构不会显着改变底物可及性。比较外源性(TRAIL)和内源性(星形孢菌素)凋亡诱导剂,发现相似的底物谱,这表明最终的蛋白水解拆除过程以相似的顺序进行。半胱天冬酶迅速靶向某些生物学过程,包括内吞途径的多种成分和miRNA加工机制。我们相信这种获取基本酶学常数的大规模平行且无定量标记的方法将有助于复杂混合物中蛋白水解和其他翻译后修饰的研究。

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    Department of Pharmaceutical Chemistry, University of California, San Francisco, 1700 4th Street, San Francisco, CA 94114,Department of Biocatalyst Characterization and Design, Codexis Inc., 200 Penobscot Drive, Redwood City, CA 94063-4718;

    Department of Pharmaceutical Chemistry, University of California, San Francisco, 1700 4th Street, San Francisco, CA 94114,Department of Biomarker Research, Genentech, 1 DNA Way, South San Francisco, CA 94010;

    Department of Pharmaceutical Chemistry, University of California, San Francisco, 1700 4th Street, San Francisco, CA 94114;

    Department of Pharmaceutical Chemistry, University of California, San Francisco, 1700 4th Street, San Francisco, CA 94114,Duke Translational Medicine Institute, Duke University Medical Center, Durham, NC 27710;

    Department of Pharmaceutical Chemistry, University of California, San Francisco, 1700 4th Street, San Francisco, CA 94114;

    Department of Pharmaceutical Chemistry, University of California, San Francisco, 1700 4th Street, San Francisco, CA 94114,Department of Cellular and Molecular Pharmacology, University of California, San Francisco, 1700 4th Street, San Francisco, CA 94114;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    apoptosis; caspase; enzymology; mass spectrometry; selected reaction monitoring;

    机译:细胞凋亡半胱天冬酶酶学质谱;选择反应监测;

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