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内皮细胞中剪切应力和黏附作用激活丝裂原活化蛋白激酶(ERK1/2)。对一种对除草菌素敏感的激酶的重要作用。

Mitogen-activated protein kinase (ERK1/2) activation by shear stress and adhesion in endothelial cells. Essential role for a herbimycin-sensitive kinase.

作者信息

Takahashi M, Berk B C

机构信息

Department of Medicine, University of Washington, Seattle 98195-7710, USA.

出版信息

J Clin Invest. 1996 Dec 1;98(11):2623-31. doi: 10.1172/JCI119083.

Abstract

Fluid shear stress modulates vascular function and structure by stimulating mechanosensitive endothelial cell signal events. Cell adhesion, mediated by integrin-matrix interactions, also regulates intracellular signaling by mechanosensitive events. To gain insight into the role of integrin-matrix interactions, we compared tyrosine phosphorylation and extracellular signal-regulated kinase (ERK1/2) activation in adhesion- and shear stress-stimulated human umbilical vein endothelial cells (HUVEC). Adhesion of HUVEC to fibronectin, but not to poly-L-lysine, rapidly activated ERK1/2. Fluid shear stress (12 dyn/cm2) enhanced ERK1/2 activation stimulated by adhesion, suggesting the presence of a separate pathway. Two differences in signal transduction were identified: focal adhesion kinase phosphorylation was increased rapidly by adhesion but not by shear stress; and ERK1/2 activation in response to adhesion was inhibited to a significantly greater extent when actin filaments were disrupted by cytochalasin D. Two similarities in activation of ERK1/2 were observed: protein kinase C (PKC) activity was necessary as shown by complete inhibition when PKC was downregulated; and an herbimycin-sensitive (genistein- and tyrphostin-insensitive) tyrosine kinase was required. c-Src was identified as a candidate tyrosine kinase as it was activated by both shear stress and adhesion. These findings suggest that adhesion and shear stress activate ERK1/2 via a shared pathway that involves an herbimycin-sensitive tyrosine kinase and PKC. In addition, shear stress activates ERK1/2 through another pathway that is partially independent of cytoskeletal integrity.

摘要

流体剪切应力通过刺激机械敏感的内皮细胞信号事件来调节血管功能和结构。由整合素-基质相互作用介导的细胞黏附,也通过机械敏感事件调节细胞内信号传导。为深入了解整合素-基质相互作用的作用,我们比较了在黏附及剪切应力刺激下的人脐静脉内皮细胞(HUVEC)中酪氨酸磷酸化和细胞外信号调节激酶(ERK1/2)的激活情况。HUVEC与纤连蛋白而非聚-L-赖氨酸的黏附迅速激活了ERK1/2。流体剪切应力(12达因/平方厘米)增强了黏附刺激的ERK1/2激活,提示存在一条独立的途径。我们确定了信号转导中的两个差异:黏附迅速增加了黏着斑激酶的磷酸化,但剪切应力未使其增加;当用细胞松弛素D破坏肌动蛋白丝时,黏附诱导的ERK1/2激活受到的抑制程度明显更大。我们还观察到ERK1/2激活中的两个相似之处:蛋白激酶C(PKC)活性是必需的,下调PKC时完全抑制可证明这一点;需要一种对除草菌素敏感(对染料木黄酮和 tyrphostin不敏感)的酪氨酸激酶。c-Src被确定为候选酪氨酸激酶,因为它可被剪切应力和黏附激活。这些发现表明,黏附和剪切应力通过一条涉及对除草菌素敏感的酪氨酸激酶和PKC的共同途径激活ERK1/2。此外,剪切应力通过另一条部分独立于细胞骨架完整性的途径激活ERK1/2。

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