首页> 美国卫生研究院文献>The Journal of Physiology >A self-limiting regulation of vasoconstrictor-activated TRPC3/C6/C7 channels coupled to PI(45)P2-diacylglycerol signalling
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A self-limiting regulation of vasoconstrictor-activated TRPC3/C6/C7 channels coupled to PI(45)P2-diacylglycerol signalling

机译:血管收缩激活的TRPC3 / C6 / C7通道与PI(45)P2-二酰甘油信号转导的自限性调节

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摘要

Activation of transient receptor potential (TRP) canonical TRPC3/C6/C7 channels by diacylglycerol (DAG) upon stimulation of phospholipase C (PLC)-coupled receptors results in the breakdown of phosphoinositides (PIPs). The critical importance of PIPs to various ion-transporting molecules is well documented, but their function in relation to TRPC3/C6/C7 channels remains controversial. By using an ectopic voltage-sensing PIP phosphatase (DrVSP), we found that dephosphorylation of PIPs robustly inhibits currents induced by carbachol (CCh), 1-oleolyl-2-acetyl-sn-glycerol (OAG) or in TRPC3, TRPC6 and TRPC7 channels, though the strength of the DrVSP-mediated inhibition (VMI) varied among the channels with a rank order of C7 > C6 > C3. Pharmacological and molecular interventions suggest that depletion of phosphatidylinositol 4,5-bisphosphate (PI(4,5)P2) is most likely the critical event for VMI in all three channels. When the PLC catalytic signal was vigorously activated through overexpression of the muscarinic type-I receptor (M1R), the inactivation of macroscopic TRPC currents was greatly accelerated in the same rank order as the VMI, and VMI of these currents was attenuated or lost. VMI was also rarely detected in vasopressin-induced TRPC6-like currents in A7r5 vascular smooth muscle cells, indicating that the inactivation by PI(4,5)P2 depletion underlies the physiological condition. Simultaneous fluorescence resonance energy transfer (FRET)-based measurement of PI(4,5)P2 levels and TRPC6 currents confirmed that VMI magnitude reflects the degree of PI(4,5)P2 depletion. These results demonstrate that TRPC3/C6/C7 channels are differentially regulated by depletion of PI(4,5)P2, and that the bimodal signal produced by PLC activation controls these channels in a self-limiting manner.
机译:刺激磷脂酶C(PLC)偶联受体后,二酰基甘油(DAG)激活瞬态受体电位(TRP)规范的TRPC3 / C6 / C7通道会导致磷酸肌醇(PIP)分解。 PIP对各种离子传输分子的至关重要性已得到充分证明,但其与TRPC3 / C6 / C7通道有关的功能仍存在争议。通过使用异位电压感应的PIP磷酸酶(DrVSP),我们发现PIP的去磷酸化可强有力地抑制卡巴胆碱(CCh),1-油基-2-乙酰基-sn-甘油(OAG)或TRPC3,TRPC6和TRPC7诱导的电流通道之间,尽管DrVSP介导的抑制(VMI)的强度在通道之间变化,其顺序为C7> C6> C3。药理和分子干预措施表明,磷脂酰肌醇4,5-二磷酸(PI(4,5)P2)的耗尽很可能是在所有三个通道中VMI的关键事件。当通过过表达毒蕈碱型I受体(M1R)强烈激活PLC催化信号时,宏观的TRPC电流的失活以与VMI相同的等级顺序大大加快,并且这些电流的VMI衰减或丢失。 VMI也很少在A7r5血管平滑肌细胞中的加压素诱导的TRPC6样电流中检测到,表明PI(4,5)P2消耗的失活是生理条件的基础。同时基于荧光共振能量转移(FRET)的PI(4,5)P2水平和TRPC6电流的测量证实,VMI幅度反映了PI(4,5)P2的消耗程度。这些结果表明,通过消耗PI(4,5)P2可以差异调节TRPC3 / C6 / C7通道,并且PLC激活产生的双峰信号以自限方式控制这些通道。

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