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机械应力激活血管平滑肌细胞中的血小板衍生生长因子受体α

Activation of PDGF receptor alpha in vascular smooth muscle cells by mechanical stress.

作者信息

Hu Y, Böck G, Wick G, Xu Q

机构信息

Institute for Biomedical Aging Research, Austrian Academy of Sciences, Innsbruck.

出版信息

FASEB J. 1998 Sep;12(12):1135-42. doi: 10.1096/fasebj.12.12.1135.

DOI:10.1096/fasebj.12.12.1135
PMID:9737716
Abstract

Hypertension increases mechanical force on the arterial wall by as much as 30%, resulting in marked alterations in signal transductions and gene expression in vascular smooth muscle cells (VSMCs) that contribute to matrix protein synthesis, cell proliferation, and differentiation. How the mechanical stimuli are converted into a biological signal in cells has yet to be studied. We investigated the role of both cyclic strain and shear stresses in initiating the cellular signaling on cultured VSMCs and found that mechanical forces evoked activation of mitogen-activated protein kinases, followed by enhanced DNA binding activity of transcription factor AP-1. Physical forces rapidly induced phosphorylation of platelet-derived growth factor receptor (PDGFR) alpha, an activated state. When GRB2, an adapter protein, was immunoprecipitated from treated VSMCs followed by Western blot analysis with anti-phosphotyrosine, -PDGFR alpha, and -GRB2 antibodies, respectively, phosphotyrosine positive staining was observed on PDGFR alpha bands of the same blot in stretch-stressed VSMCs, supporting the mechanical stress-induced activation of PDGFR alpha. Conditioned medium from stretch-stressed VSMCs did not result in PDGFR alpha phosphorylation, and antibodies binding to all forms of PDGFs did not block stress-induced PDGFR alpha activation. Thus, mechanical stresses may directly perturb the cell surface or alter receptor conformation, thereby initiating signaling pathways normally used by growth factors.

摘要

高血压使动脉壁上的机械力增加多达30%,导致血管平滑肌细胞(VSMCs)中的信号转导和基因表达发生显著改变,这些改变有助于基质蛋白合成、细胞增殖和分化。机械刺激如何在细胞内转化为生物信号尚待研究。我们研究了循环应变和剪切应力在启动培养的VSMCs细胞信号传导中的作用,发现机械力可诱发丝裂原活化蛋白激酶的激活,随后转录因子AP-1的DNA结合活性增强。物理力迅速诱导血小板衍生生长因子受体(PDGFR)α的磷酸化,使其处于活化状态。当从处理过的VSMCs中免疫沉淀衔接蛋白GRB2,然后分别用抗磷酸酪氨酸、抗PDGFRα和抗GRB2抗体进行蛋白质印迹分析时,在拉伸应激的VSMCs的同一印迹的PDGFRα条带上观察到磷酸酪氨酸阳性染色,支持机械应力诱导的PDGFRα活化。拉伸应激的VSMCs的条件培养基不会导致PDGFRα磷酸化,并且与所有形式的血小板衍生生长因子(PDGFs)结合的抗体不会阻断应激诱导的PDGFRα活化。因此,机械应力可能直接干扰细胞表面或改变受体构象,从而启动通常由生长因子使用的信号通路。

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