Delocalization of Endogenous A-kinase Antagonizes Rap1-Rho-α2C-Adrenoceptor Signaling in Human Microvascular Smooth Muscle Cells.

Hanaa K B Motawea, Alisa D Blazek, Matthew J Zirwas, Adam P Pleister, Amany A E Ahmed, Bradley K McConnell, Maqsood A Chotani
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Abstract

The second messenger cyclic AMP (cAMP) plays a vital role in the physiology of the cardiovascular system, including vasodilation of large blood vessels. This study focused on cAMP signaling in peripheral blood vessels, specifically in human vascular smooth muscle (microVSM) cells explanted from skin punch biopsy arterioles (also known as resistance vessels) of healthy volunteers. Using these human microVSM we recently demonstrated cAMP activation of exchange protein activated by cAMP (Epac), the Ras-related small GTPase Rap1A, and RhoA-ROCK-F-actin signaling in human microVSM to increase expression and cell surface translocation of functional α2C-adrenoceptors (α2C-ARs) that mediate vasoconstriction. Protein-protein association with the actin-binding protein filamin-2 and phosphorylation of filamin-2 Ser2113 by cAMP-Rap1A-Rho-ROCK signaling were necessary for receptor translocation in these cells. Although cAMP activated A-kinase in these cells, these effects were independent of A-kinase, and suggested compartmentalized A-kinase local signaling facilitated by A-kinase anchoring proteins (AKAPs). In this study we globally disrupted A-kinase-AKAP interactions by the anchoring inhibitor decoy peptide Ht31 and examined the effect on α2C-AR expression, translocation, and function in quiescent microVSM treated with the adenylyl cyclase activator and cAMP elevating agent forskolin. The results show that Ht31, but not the control peptide Ht31-P, reduced forskolin-stimulated Ser133 phosphorylation of A-kinase substrate CREB, reduced α2C-AR mRNA levels, reduced cell surface translocated receptors, and attenuated agonist-triggered receptor functional responses. Together, the results suggest that compartmentalized cAMP signaling elicits a selective cellular response in microVSM, which may have relevance to arteriole physiological function and responses.

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内源性a激酶离域拮抗人微血管平滑肌细胞Rap1-Rho-α 2c -肾上腺素能受体信号传导
第二信使环AMP (cAMP)在心血管系统的生理中起着至关重要的作用,包括大血管的血管舒张。本研究的重点是外周血管中的cAMP信号,特别是从健康志愿者的皮肤穿刺活检小动脉(也称为阻力血管)中移植的人血管平滑肌(microVSM)细胞。利用这些人类微vsm,我们最近证明了cAMP激活了由cAMP (Epac)、ras相关的小GTPase Rap1A和RhoA-ROCK-F-actin信号激活的交换蛋白,从而增加了介导血管收缩的功能性α 2c -肾上腺素受体(α2C-ARs)的表达和细胞表面易位。在这些细胞中,肌动蛋白结合蛋白丝蛋白-2的蛋白-蛋白结合和丝蛋白-2 Ser2113的cAMP-Rap1A-Rho-ROCK信号磷酸化是受体易位的必要条件。虽然cAMP在这些细胞中激活了a激酶,但这些作用是独立于a激酶的,并且表明由a激酶锚定蛋白(AKAPs)促进的区隔化的a激酶局部信号传导。在这项研究中,我们通过锚定抑制剂诱饵肽Ht31在全球范围内破坏了a -激酶- akap的相互作用,并研究了腺苷酸环化酶激活剂和cAMP升高剂forskolin对静止微vsm α2C-AR表达、易位和功能的影响。结果表明,Ht31,而不是对照肽Ht31- p,减少了福斯克林刺激的a激酶底物CREB的Ser133磷酸化,降低了α2C-AR mRNA水平,减少了细胞表面易位受体,并减弱了激动剂触发的受体功能反应。综上所述,这些结果表明,区隔化的cAMP信号在微vsm中引发了一种选择性的细胞反应,这可能与小动脉的生理功能和反应有关。
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