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Time-resolved Analysis of Proteome Dynamics by Tandem Mass Tags and Stable Isotope Labeling in Cell Culture (TMT-SILAC) Hyperplexing

机译:时间解析的蛋白质组动力学的串联质量标签和细胞培养(TMT-SILAC)超重结合中的稳定同位素标记

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摘要

Recent advances in mass spectrometry have enabled system-wide analyses of protein turnover. By globally quantifying the kinetics of protein clearance and synthesis, these methodologies can provide important insights into the regulation of the proteome under varying cellular and environmental conditions. To facilitate such analyses, we have employed a methodology that combines metabolic isotopic labeling (Stable Isotope Labeling in Cell Culture - SILAC) with isobaric tagging (Tandem Mass Tags - TMT) for analysis of multiplexed samples. The fractional labeling of multiple time-points can be measured in a single mass spectrometry run, providing temporally resolved measurements of protein turnover kinetics. To demonstrate the feasibility of the approach, we simultaneously measured the kinetics of protein clearance and accumulation for more than 3000 proteins in dividing and quiescent human fibroblasts and verified the accuracy of the measurements by comparison to established non-multiplexed approaches. The results indicate that upon reaching quiescence, fibroblasts compensate for lack of cellular growth by globally downregulating protein synthesis and upregulating protein degradation. The described methodology significantly reduces the cost and complexity of temporally-resolved dynamic proteomic experiments and improves the precision of proteome-wide turnover data.
机译:质谱技术的最新进展已使全系统的蛋白质更新分析成为可能。通过全局量化蛋白质清除和合成的动力学,这些方法可以为在变化的细胞和环境条件下调节蛋白质组提供重要的见识。为了便于进行此类分析,我们采用了一种方法,该方法将代谢同位素标记(细胞培养中的稳定同位素标记-SILAC)与同量异位标记(串联质量标记-TMT)相结合,用于分析多重样品。可以在单个质谱运行中测量多个时间点的分数标记,从而提供蛋白质更新动力学的时间分辨测量。为了证明该方法的可行性,我们同时测量了分裂和静止的人类成纤维细胞中超过3000种蛋白质的蛋白质清除和蓄积动力学,并通过与已建立的非多重方法进行比较验证了测量的准确性。结果表明,达到静止状态时,成纤维细胞通过整体下调蛋白质合成和上调蛋白质降解来补偿细胞生长的缺乏。所描述的方法显着降低了时间分辨动态蛋白质组学实验的成本和复杂性,并提高了蛋白质组范围内营业额数据的准确性。

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