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Dynamics of receptor-operated Ca 2+ currents through TRPC channels controlled via the PI(4,5)P 2-PLC signaling pathway

机译:通过PI(4,5)P 2 -PLC信号通路控制的TRPC通道的受体操纵性Ca 2 + 电流的动力学

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Transient receptor potential canonical (TRPC) channels are Ca~(2+)-permeable, nonselective cation channels that carry receptor-operated Ca~(2+)currents (ROCs) triggered by receptor-induced, phospholipase C (PLC)-catalyzed hydrolysis of phosphatidylinositol 4,5-bisphosphate [PI(4,5)P_(2)]. Within the vasculature, TRPC channel ROCs contribute to smooth muscle cell depolarization, vasoconstriction, and vascular remodeling. However, TRPC channel ROCs exhibit a variable response to receptor-stimulation, and the regulatory mechanisms governing TRPC channel activity remain obscure. The variability of ROCs may be explained by their complex regulation by PI(4,5)P_(2)and its metabolites, which differentially affect TRPC channel activity. To resolve the complex regulation of ROCs, the use of voltage-sensing phosphoinositide phosphatases and model simulation have helped to reveal the time-dependent contribution of PI(4,5)P_(2)and the possible role of PI(4,5)P_(2)in the regulation of ROCs. These approaches may provide unprecedented insight into the dynamics of PI(4,5)P_(2)regulation of TRPC channels and the fundamental mechanisms underlying transmembrane ion flow. Within that context, we summarize the regulation of TRPC channels and their coupling to receptor-mediated signaling, as well as the application of voltage-sensing phosphoinositide phosphatases to this research. We also discuss the controversial bidirectional effects of PI(4,5)P_(2)using a model simulation that could explain the complicated effects of PI(4,5)P_(2)on different ROCs.
机译:瞬时受体电位经典(TRPC)通道是可渗透Ca〜(2+)的非选择性阳离子通道,其携带由受体诱导的磷脂酶C(PLC)催化水解触发的受体操作性Ca〜(2+)电流(ROC)。磷脂酰肌醇4,5-二磷酸[PI(4,5)P_(2)]。在脉管系统内,TRPC通道的ROC有助于平滑肌细胞去极化,血管收缩和血管重塑。但是,TRPC通道ROC表现出对受体刺激的可变反应,并且控制TRPC通道活性的调节机制仍然不清楚。 ROC的可变性可以通过PI(4,5)P_(2)及其代谢产物的复杂调节来解释,这会差异性地影响TRPC通道的活性。为了解决ROC的复杂调节,电压感应磷酸肌醇磷酸酶的使用和模型仿真有助于揭示PI(4,5)P_(2)的时间依赖性贡献以及PI(4,5)的可能作用ROC规则中的P_(2)。这些方法可能为TRPC通道的PI(4,5)P_(2)调节动力学和跨膜离子流的基本机制提供前所未有的见解。在此背景下,我们总结了TRPC通道的调节及其与受体介导的信号传导的偶联,以及电压感应磷酸肌醇磷酸酶在该研究中的应用。我们还使用模型仿真讨论了有争议的PI(4,5)P_(2)双向影响,该模型仿真可以解释PI(4,5)P_(2)对不同ROC的复杂影响。

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