Greenstein Joseph L, Hinch Robert, Winslow Raimond L
The Center for Cardiovascular Bioinformatics and Modeling and The Whitaker Biomedical Engineering Institute, The Johns Hopkins University Whiting School of Engineering and School of Medicine, Baltimore, Maryland, USA.
Biophys J. 2006 Jan 1;90(1):77-91. doi: 10.1529/biophysj.105.065169. Epub 2005 Oct 7.
It is now well established that characteristic properties of excitation-contraction (EC) coupling in cardiac myocytes, such as high gain and graded Ca(2+) release, arise from the interactions that occur between L-type Ca(2+) channels (LCCs) and nearby ryanodine-sensitive Ca(2+) release channels (RyRs) in localized microdomains. Descriptions of Ca(2+)-induced Ca(2+) release (CICR) that account for these local mechanisms are lacking from many previous models of the cardiac action potential, and those that do include local control of CICR are able to reconstruct properties of EC coupling, but require computationally demanding stochastic simulations of approximately 10(5) individual ion channels. In this study, we generalize a recently developed analytical approach for deriving simplified mechanistic models of CICR to formulate an integrative model of the canine cardiac myocyte which is computationally efficient. The resulting model faithfully reproduces experimentally measured properties of EC coupling and whole cell phenomena. The model is used to study the role of local redundancy in L-type Ca(2+) channel gating and the role of dyad configuration on EC coupling. Simulations suggest that the characteristic steep rise in EC coupling gain observed at hyperpolarized potentials is a result of increased functional coupling between LCCs and RyRs. We also demonstrate mechanisms by which alterations in the early repolarization phase of the action potential, resulting from reduction of the transient outward potassium current, alters properties of EC coupling.
现已充分证实,心肌细胞兴奋 - 收缩(EC)偶联的特征特性,如高增益和分级Ca(2+)释放,源于局部微区中L型Ca(2+)通道(LCCs)与附近的兰尼碱敏感Ca(2+)释放通道(RyRs)之间发生的相互作用。许多先前的心脏动作电位模型缺乏对这些局部机制的Ca(2+)诱导Ca(2+)释放(CICR)描述,而那些确实包括CICR局部控制的模型能够重建EC偶联特性,但需要对大约10(5)个单个离子通道进行计算要求很高的随机模拟。在本研究中,我们推广了一种最近开发的用于推导简化CICR机制模型的分析方法,以构建一个计算效率高的犬心肌细胞整合模型。所得模型忠实地再现了实验测量的EC偶联特性和全细胞现象。该模型用于研究L型Ca(2+)通道门控中局部冗余的作用以及二联体构型对EC偶联的作用。模拟表明,在超极化电位下观察到的EC偶联增益特征性急剧上升是LCCs与RyRs之间功能偶联增加的结果。我们还展示了由于瞬时外向钾电流减少导致动作电位早期复极化阶段改变从而改变EC偶联特性的机制。