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首页> 外文期刊>Journal of proteome research >Sources of technical variability in quantitative LC-MS proteomics: Human brain tissue sample analysis
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Sources of technical variability in quantitative LC-MS proteomics: Human brain tissue sample analysis

机译:LC-MS定量蛋白质组学中技术差异的来源:人脑组织样品分析

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摘要

To design a robust quantitative proteomics study, an understanding of both the inherent heterogeneity of the biological samples being studied as well as the technical variability of the proteomics methods and platform is needed. Additionally, accurately identifying the technical steps associated with the largest variability would provide valuable information for the improvement and design of future processing pipelines. We present an experimental strategy that allows for a detailed examination of the variability of the quantitative LC-MS proteomics measurements. By replicating analyses at different stages of processing, various technical components can be estimated and their individual contribution to technical variability can be dissected. This design can be easily adapted to other quantitative proteomics pipelines. Herein, we applied this methodology to our label-free workflow for the processing of human brain tissue. For this application, the pipeline was divided into four critical components: Tissue dissection and homogenization (extraction), protein denaturation followed by trypsin digestion and SPE cleanup (digestion), short-term run-to-run instrumental response fluctuation (instrumental variance), and long-term drift of the quantitative response of the LC-MS/MS platform over the 2 week period of continuous analysis (instrumental stability). From this analysis, we found the following contributions to variability: extraction (72%) instrumental variance (16%) > instrumental stability (8.4%) > digestion (3.1%). Furthermore, the stability of the platform and its suitability for discovery proteomics studies is demonstrated.
机译:为了设计可靠的定量蛋白质组学研究,需要了解正在研究的生物样品的固有异质性以及蛋白质组学方法和平台的技术变异性。另外,准确地识别与最大可变性相关的技术步骤将为将来的处理管道的改进和设计提供有价值的信息。我们提出了一种实验策略,可以详细检查定量LC-MS蛋白质组学测量的变异性。通过在处理的不同阶段复制分析,可以估算各种技术组件,并分析它们对技术可变性的单独贡献。这种设计可轻松适用于其他定量蛋白质组学管道。在本文中,我们将此方法应用于我们的无标签工作流程来处理人脑组织。在此应用中,管道分为四个关键部分:组织解剖和均质化(提取),蛋白质变性,胰蛋白酶消化和SPE净化(消化),短期运行对仪器的响应波动(仪器差异),和LC-MS / MS平台在连续2周的分析过程中定量响应的长期漂移(仪器稳定性)。通过该分析,我们发现了以下对可变性的贡献:提取(72%)工具差异(16%)>工具稳定性(8.4%)>消化(3.1%)。此外,展示了平台的稳定性及其对发现蛋白质组学研究的适用性。

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