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Ca2+-dependent components of inactivation of unitary cardiac L-type Ca2+ channels

机译:单一心脏L型Ca2 +通道失活的Ca2 +依赖性成分

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摘要

A Ca2+ ion-dependent inactivation (CDI) of L-type Ca2+ channels (LCC) is vital in limiting and shaping local Ca2+ ion signalling in a variety of excitable cell types. However, under physiological conditions the unitary LCC properties that underlie macroscopic inactivation are unclear. Towards this end, we have probed the gating kinetics of individual cardiac LCCs recorded with a physiological Ca2+ ion concentration (2 mm) permeating the channel, and in the absence of channel agonists. Upon depolarization the ensemble-averaged LCC current decayed with a fast and a slow exponential component. We analysed the unitary behaviour responsible for this biphasic decay by means of a novel kinetic dissection of LCC gating parameters. We found that inactivation was caused by a rapid decrease in the frequency of LCC reopening, and a slower decline in mean open time of the LCC. In contrast, with barium ions permeating the channel ensemble-averaged currents displayed only a single, slow exponential decay and little time dependence of the LCC open time. Our results demonstrate that the fast and slow phases of macroscopic inactivation reflect the distinct time courses for the decline in the frequency of LCC reopening and the open dwell time, both of which are modulated by Ca2+ influx. Analysis of the evolution of CDI in individual LCC episodes was employed to examine the stochastic nature of the underlying molecular switch, and revealed that influx on the order of a thousand Ca2+ ions may be sufficient to trigger CDI. This is the first study to characterize both the unitary kinetics and the stoichiometry of CDI of LCCs with a physiological Ca2+ concentration. These novel findings may provide a basis for understanding the mechanisms regulating unitary LCC gating, which is a pivotal element in the local control of Ca2+-dependent signalling processes.
机译:L型Ca 2 + 通道(LCC)的Ca 2 + 离子依赖性灭活(CDI)在限制和塑造局部Ca 2+ < / sup>各种可激发细胞类型中的离子信号传导。然而,在生理条件下,宏观失活的单一LCC特性尚不清楚。为此,我们探究了以渗透通道的生理Ca 2 + 离子浓度(2 mm)记录的单个心脏LCC的门控动力学,并且没有通道激动剂。在去极化时,集合平均的LCC电流以快和慢的指数分量衰减。我们通过LCC门控参数的新型动力学解剖分析了造成这种双相衰减的单一行为。我们发现失活是由于LCC重新开放频率的快速下降和LCC平均开放时间的缓慢下降引起的。相反,钡离子渗透通道整体平均电流仅显示一个缓慢的指数衰减,并且与LCC打开时间的时间依赖性很小。我们的研究结果表明,宏观失活的快慢阶段反映了LCC重新开放频率和开放停留时间下降的不同时程,这两个过程均受Ca 2 + 涌入的调节。通过分析单个LCC发作中CDI的演变来检查潜在分子开关的随机性,发现流入1000 Ca 2 + 数量级的离子可能足以触发CDI。 。这是首次表征具有生理Ca 2 + 浓度的LCC的整体动力学和CDI化学计量的研究。这些新颖的发现可能为理解调节单一LCC门控的机制提供基础,该门控是局部控制Ca 2 + 信号传导过程的关键因素。

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