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Cyclic GMP Kinase and RhoA Ser188 Phosphorylation Integrate Pro- and Antifibrotic Signals in Blood Vessels

机译:循环GMP激酶和RhoA Ser188磷酸化整合了血管中的促纤维化和抗纤维化信号

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摘要

Vascular fibrosis is a major complication of hypertension and atherosclerosis, yet it is largely untreatable. Natriuretic peptides (NPs) repress fibrogenic activation of vascular smooth muscle cells (VSMCs), but the intracellular mechanism mediating this effect remains undetermined. Here we show that inhibition of RhoA through phosphorylation at Ser188, the site targeted by the NP effector cyclic GMP (cGMP)-dependent protein kinase I (cGK I), is critical to fully exert antifibrotic potential. cGK I+/− mouse blood vessels exhibited an attenuated P-RhoA level and concurrently increased RhoA/ROCK signaling. Importantly, cGK I insufficiency caused dynamic recruitment of ROCK into the fibrogenic programs, thereby eliciting exaggerated vascular hypertrophy and fibrosis. Transgenic expression of cGK I-unphosphorylatable RhoAA188 in VSMCs augmented ROCK activity, vascular hypertrophy, and fibrosis more prominently than did that of wild-type RhoA, consistent with the notion that RhoAA188 escapes the intrinsic inhibition by cGK I. Additionally, VSMCs expressing RhoAA188 became refractory to the antifibrotic effects of NPs. Our results identify cGK I-mediated Ser188 phosphorylation of RhoA as a converging node for pro- and antifibrotic signals and may explain how diminished cGMP signaling, commonly associated with vascular malfunction, predisposes individuals to vascular fibrosis.
机译:血管纤维化是高血压和动脉粥样硬化的主要并发症,但基本上无法治愈。利钠肽(NP)抑制血管平滑肌细胞(VSMC)的纤维化激活,但介导此作用的细胞内机制仍未确定。在这里,我们显示了通过磷酸化Ser188来抑制RhoA,Ser188是NP效应物环GMP(cGMP)依赖性蛋白激酶I(cGK I)靶向的位点,对于充分发挥抗纤维化潜力至关重要。 cGK I + /-/ sup>小鼠血管的P-RhoA水平降低,同时RhoA / ROCK信号增强。重要的是,cGK I功能不足导致ROCK动态募集到纤维形成程序中,从而引发了过度的血管肥大和纤维化。与野生型RhoA相比,vSMC中cGK I-不可磷酸化的RhoA A188 的转基因表达更明显地增强了ROCK活性,血管肥大和纤维化,这与RhoA A188的观点一致。 sup>摆脱了cGK I的内在抑制作用。另外,表达RhoA A188 的VSMC对NP的抗纤维化作用具有抵抗力。我们的研究结果表明,RhoA的cGK I介导的Ser188磷酸化是促纤维化和抗纤维化信号的汇合点,并且可以解释通常与血管功能障碍相关的cGMP信号减弱如何使个体容易发生血管纤维化。

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