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基于 SILAC 的人原代内皮细胞形态发生蛋白质组学揭示了肿瘤血管生成标志物。

SILAC-based proteomics of human primary endothelial cell morphogenesis unveils tumor angiogenic markers.

机构信息

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

出版信息

Mol Cell Proteomics. 2013 Dec;12(12):3599-611. doi: 10.1074/mcp.M113.031344. Epub 2013 Aug 26.

DOI:10.1074/mcp.M113.031344
PMID:23979707
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3861710/
Abstract

Proteomics has been successfully used for cell culture on dishes, but more complex cellular systems have proven to be challenging and so far poorly approached with proteomics. Because of the complexity of the angiogenic program, we still do not have a complete understanding of the molecular mechanisms involved in this process, and there have been no in depth quantitative proteomic studies. Plating endothelial cells on matrigel recapitulates aspects of vessel growth, and here we investigate this mechanism by using a spike-in SILAC quantitative proteomic approach. By comparing proteomic changes in primary human endothelial cells morphogenesis on matrigel to general adhesion mechanisms in cells spreading on culture dish, we pinpoint pathways and proteins modulated by endothelial cells. The cell-extracellular matrix adhesion proteome depends on the adhesion substrate, and a detailed proteomic profile of the extracellular matrix secreted by endothelial cells identified CLEC14A as a matrix component, which binds to MMRN2. We verify deregulated levels of these proteins during tumor angiogenesis in models of multistage carcinogenesis. This is the most in depth quantitative proteomic study of endothelial cell morphogenesis, which shows the potential of applying high accuracy quantitative proteomics to in vitro models of vessel growth to shed new light on mechanisms that accompany pathological angiogenesis. The mass spectrometry proteomics data have been deposited to the ProteomeXchange Consortium with the data set identifier PXD000359.

摘要

蛋白质组学已成功用于在培养皿中培养细胞,但更复杂的细胞系统已被证明具有挑战性,迄今为止,蛋白质组学在这些系统上的应用还很少。由于血管生成程序的复杂性,我们仍然没有完全了解这个过程中涉及的分子机制,也没有进行过深入的定量蛋白质组学研究。在基质胶上种植内皮细胞可以重现血管生长的某些方面,在这里,我们使用 Spike-in SILAC 定量蛋白质组学方法来研究这个机制。通过将原代人内皮细胞在基质胶上形态发生的蛋白质组变化与细胞在培养皿上扩散的一般粘附机制进行比较,我们确定了受内皮细胞调节的途径和蛋白质。细胞-细胞外基质粘附蛋白质组依赖于粘附底物,而内皮细胞分泌的细胞外基质的详细蛋白质组谱确定 CLEC14A 为基质成分,其与 MMRN2 结合。我们在多阶段致癌模型中验证了这些蛋白质在肿瘤血管生成期间的失调水平。这是对内皮细胞形态发生的最深入的定量蛋白质组学研究,它展示了将高精度定量蛋白质组学应用于血管生长的体外模型的潜力,以揭示伴随病理性血管生成的机制。质谱蛋白质组学数据已被存入 ProteomeXchange 联盟,数据集标识符为 PXD000359。

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In vivo SILAC-based proteomics reveals phosphoproteome changes during mouse skin carcinogenesis.基于体内 SILAC 的蛋白质组学揭示了小鼠皮肤癌变过程中的磷酸化蛋白质组变化。
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MULTIMERIN2 impairs tumor angiogenesis and growth by interfering with VEGF-A/VEGFR2 pathway.多聚蛋白 2 通过干扰 VEGF-A/VEGFR2 通路来损害肿瘤血管生成和生长。
Oncogene. 2012 Jun 28;31(26):3136-47. doi: 10.1038/onc.2011.487. Epub 2011 Oct 24.
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