Chen Wei, Wasserstrom J Andrew, Shiferaw Y
Department of Physics and Astronomy, California State University, Northridge, CA 91330, USA.
Am J Physiol Heart Circ Physiol. 2009 Jul;297(1):H171-80. doi: 10.1152/ajpheart.00098.2009. Epub 2009 May 8.
Mutations in the ryanodine receptor (RyR) have been linked to exercise-induced sudden cardiac death. However, the precise sequence of events linking RyR channel mutations to a whole heart arrhythmia is not completely understood. In this paper, we apply a detailed, mathematical model of subcellular calcium (Ca) release, coupled to membrane voltage, to study how defective RyR channels can induce arrhythmogenic-triggered activity. In particular, we show that subcellular Ca activity, such as spontaneous Ca sparks and Ca waves, is highly sensitive to coupled gating between RyR channels in clusters. We show that small changes in coupled gating can induce aberrant Ca release activity, which, under Ca overload conditions, can induce delayed afterdepolarization (DAD). We systematically investigate the properties of subcellular Ca during DAD induction and show that the voltage time course during a DAD is dependent on the timing and number of spontaneous Ca sparks that transition to Ca waves. These results provide a detailed mechanism for the role of coupled gating in the genesis of triggered arrhythmias.
兰尼碱受体(RyR)的突变与运动诱发的心脏性猝死有关。然而,将RyR通道突变与全心心律失常联系起来的精确事件序列尚未完全明了。在本文中,我们应用一个详细的、与膜电压耦合的亚细胞钙(Ca)释放数学模型,来研究有缺陷的RyR通道如何诱发致心律失常的触发活动。特别是,我们表明亚细胞Ca活性,如自发Ca火花和Ca波,对簇状RyR通道之间的耦合门控高度敏感。我们表明耦合门控的微小变化可诱发异常Ca释放活动,在Ca超载条件下,这可诱发延迟后去极化(DAD)。我们系统地研究了DAD诱发过程中亚细胞Ca的特性,并表明DAD期间的电压时程取决于转变为Ca波的自发Ca火花的时间和数量。这些结果为耦合门控在触发心律失常发生中的作用提供了详细机制。