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超深度人类磷酸化蛋白质组揭示了基于酪氨酸和丝氨酸/苏氨酸的信号传导的独特调控性质。

Ultradeep human phosphoproteome reveals a distinct regulatory nature of Tyr and Ser/Thr-based signaling.

作者信息

Sharma Kirti, D'Souza Rochelle C J, Tyanova Stefka, Schaab Christoph, Wiśniewski Jacek R, Cox Jürgen, Mann Matthias

机构信息

Department of Proteomics and Signal Transduction, Max-Planck Institute of Biochemistry, Am Klopferspitz 18, 82152 Martinsried, Germany.

Department of Proteomics and Signal Transduction, Max-Planck Institute of Biochemistry, Am Klopferspitz 18, 82152 Martinsried, Germany.

出版信息

Cell Rep. 2014 Sep 11;8(5):1583-94. doi: 10.1016/j.celrep.2014.07.036. Epub 2014 Aug 21.

Abstract

Regulatory protein phosphorylation controls normal and pathophysiological signaling in eukaryotic cells. Despite great advances in mass-spectrometry-based proteomics, the extent, localization, and site-specific stoichiometry of this posttranslational modification (PTM) are unknown. Here, we develop a stringent experimental and computational workflow, capable of mapping more than 50,000 distinct phosphorylated peptides in a single human cancer cell line. We detected more than three-quarters of cellular proteins as phosphoproteins and determined very high stoichiometries in mitosis or growth factor signaling by label-free quantitation. The proportion of phospho-Tyr drastically decreases as coverage of the phosphoproteome increases, whereas Ser/Thr sites saturate only for technical reasons. Tyrosine phosphorylation is maintained at especially low stoichiometric levels in the absence of specific signaling events. Unexpectedly, it is enriched on higher-abundance proteins, and this correlates with the substrate KM values of tyrosine kinases. Our data suggest that P-Tyr should be considered a functionally separate PTM of eukaryotic proteomes.

摘要

调节蛋白磷酸化控制真核细胞中的正常和病理生理信号传导。尽管基于质谱的蛋白质组学取得了巨大进展,但这种翻译后修饰(PTM)的程度、定位和位点特异性化学计量仍然未知。在这里,我们开发了一种严格的实验和计算工作流程,能够在单一人类癌细胞系中绘制超过50,000种不同的磷酸化肽段。我们检测到超过四分之三的细胞蛋白为磷酸化蛋白,并通过无标记定量确定了有丝分裂或生长因子信号传导中非常高的化学计量。随着磷酸化蛋白质组覆盖范围的增加,磷酸化酪氨酸的比例急剧下降,而丝氨酸/苏氨酸位点仅由于技术原因达到饱和。在没有特定信号事件的情况下,酪氨酸磷酸化维持在特别低的化学计量水平。出乎意料的是,它在丰度较高的蛋白质上富集,这与酪氨酸激酶的底物KM值相关。我们的数据表明,磷酸化酪氨酸应被视为真核蛋白质组中功能上独立的翻译后修饰。

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