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基于亚细胞分级分离整合定量质谱对表皮生长因子受体复合物进行系统范围的时空特征分析。

A System-Wide Spatiotemporal Characterization of ErbB Receptor Complexes by Subcellular Fractionation Integrated Quantitative Mass Spectrometry.

机构信息

State Key Laboratory of Proteomics, Beijing Proteome Research Center, National Center for Protein Sciences (Beijing), Beijing Institute of Lifeomics, Beijing 102206, China.

SickKids Research Institute, cell biology 686 Bay St, Toronto, Ontario CAN M5G 0A4, Canada.

出版信息

Anal Chem. 2021 Jun 8;93(22):7933-7941. doi: 10.1021/acs.analchem.1c00651. Epub 2021 May 25.

Abstract

Precise spatiotemporal regulation of protein complex assembly is essential for cells to achieve a meaningful rely of information flow via intracellular signaling networks in response to extracellular cues, whose disruption would lead to disease. Although various attempts have been made for spatial and/or temporal analysis of protein complexes, it is still a challenge to track cell-wide dynamics of a particular protein complex under physiological conditions. Here we describe a workflow that combines endogenous expression of tagged proteins, organelle marker distribution-directed subcellular fractionation, scaffold protein-mediated receptor complex purification, and targeted proteomics for spatiotemporal quantification of protein complexes in whole cell scale. We applied our method to investigate the assembly kinetics of EGF-dependent ErbB receptor complexes. After fractionation using the density gradient centrifugation and organelle assignment based on organelle markers, endogenous ErbB complex in different subcellular fractionation was efficiently enriched. By using targeted mass spectrometry, ErbB complex components that expressed medium to low level was precisely quantified with in-depth coverage, simultaneously in time and subcellular spaces. Our results revealed a sophisticated scheme of complex behaviors characterized by multiple subcomplexes with distinct molecular composition formed across subcellular fractions enriched with cytosol, plasma membrane, endosome, or mitochondria, implying organelle-specific ErbB functions. Remarkably, our results demonstrated for the first time that activated ErbB receptors might increase their signaling range through promoting a cytosolic, receptor-free subcomplex, consisting of Shc1, Grb2, Arhgef5, Garem1, and Lrrk1. These findings emphasize the potential of our strategy as a powerful tool to study spatiotemporal dynamics of protein complexes.

摘要

精确的蛋白质复合物组装的时空调控对于细胞在响应细胞外信号时通过细胞内信号网络实现有意义的信息流至关重要,其破坏会导致疾病。尽管已经进行了各种尝试来进行蛋白质复合物的空间和/或时间分析,但在生理条件下跟踪特定蛋白质复合物的全细胞动态仍然是一个挑战。在这里,我们描述了一种工作流程,该流程结合了标记蛋白的内源性表达、细胞器标记物分布指导的亚细胞分级分离、支架蛋白介导的受体复合物纯化以及靶向蛋白质组学,用于在全细胞尺度上对蛋白质复合物进行时空定量。我们应用我们的方法来研究 EGF 依赖性 ErbB 受体复合物的组装动力学。使用密度梯度离心和基于细胞器标记物的细胞器分配进行分级分离后,有效地富集了不同亚细胞分级分离中的内源性 ErbB 复合物。通过使用靶向质谱法,可以精确地定量表达中低水平的 ErbB 复合物成分,同时在时间和亚细胞空间上进行深入覆盖。我们的结果揭示了一种复杂的行为方案,其特征是多个亚复合物具有不同的分子组成,这些亚复合物分布在富含细胞质、质膜、内体或线粒体的亚细胞分级分离中,暗示了细胞器特异性的 ErbB 功能。值得注意的是,我们的结果首次表明,激活的 ErbB 受体可能通过促进包含 Shc1、Grb2、Arhgef5、Garem1 和 Lrrk1 的无受体细胞质亚复合物来增加其信号转导范围。这些发现强调了我们的策略作为研究蛋白质复合物时空动态的有力工具的潜力。

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