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一种用于心脏钙释放通道的最小门控模型。

A minimal gating model for the cardiac calcium release channel.

作者信息

Zahradníková A, Zahradník I

机构信息

Institute of Molecular Physiology and Genetics, Slovak Academy of Sciences, Bratislava, Slovak Republic.

出版信息

Biophys J. 1996 Dec;71(6):2996-3012. doi: 10.1016/S0006-3495(96)79492-4.

Abstract

A Markovian model of the cardiac Ca release channel, based on experimental single-channel gating data, was constructed to understand the transient nature of Ca release. The rate constants for a minimal gating scheme with one Ca-free resting state, and with two open and three closed states with one bound Ca2+, were optimized to simulate the following experimental findings. In steady state the channel displays three modes of activity: inactivated 1 mode without openings, low-activity L mode with single openings, and high-activity H mode with bursts of openings. At the onset of a Ca2+ step, the channel first activates in H mode and then slowly relaxes to a mixture of all three modes, the distribution of which depends on the new Ca2+. The corresponding ensemble current shows rapid activation, which is followed by a slow partial inactivation. The transient reactivation of the channel (increment detection) in response to successive additions of Ca2+ is then explained by the model as a gradual recruitment of channels from the extant pool of channels in the resting state. For channels in a living cell, the model predicts a high level of peak activation, a high extent of inactivation, and rapid deactivation, which could underlie the observed characteristics of the elementary release events (calcium sparks).

摘要

基于实验单通道门控数据构建了心脏钙释放通道的马尔可夫模型,以了解钙释放的瞬态特性。对具有一个无钙静息状态、两个开放状态和三个结合一个Ca2+的关闭状态的最小门控方案的速率常数进行了优化,以模拟以下实验结果。在稳态下,通道表现出三种活动模式:无开放的失活1模式、具有单个开放的低活性L模式和具有开放爆发的高活性H模式。在Ca2+阶跃开始时,通道首先以H模式激活,然后缓慢松弛到所有三种模式的混合状态,其分布取决于新的Ca2+。相应的整体电流显示快速激活,随后是缓慢的部分失活。该模型将通道响应连续添加Ca2+的瞬态再激活(增量检测)解释为从静息状态下现存通道池中逐渐募集通道。对于活细胞中的通道,该模型预测了高水平的峰值激活、高程度的失活和快速失活,这可能是观察到的基本释放事件(钙火花)特征的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/efa6/1233789/323d6b54824f/biophysj00042-0092-a.jpg

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