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Studying dyadic structure–function relationships: a review of current modeling approaches and new insights into Ca2+ (mis)handling

机译:研究二元结构与功能的关系:对当前建模方法的综述以及对Ca2 +(mis)处理的新见解

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Excitation–contraction coupling in cardiac myocytes requires calcium influx through L-type calcium channels in the sarcolemma, which gates calcium release through sarcoplasmic reticulum ryanodine receptors in a process known as calcium-induced calcium release, producing a myoplasmic calcium transient and enabling cardiomyocyte contraction. The spatio-temporal dynamics of calcium release, buffering, and reuptake into the sarcoplasmic reticulum play a central role in excitation–contraction coupling in both normal and diseased cardiac myocytes. However, further quantitative understanding of these cells’ calcium machinery and the study of mechanisms that underlie both normal cardiac function and calcium-dependent etiologies in heart disease requires accurate knowledge of cardiac ultrastructure, protein distribution and subcellular function. As current imaging techniques are limited in spatial resolution, limiting insight into changes in calcium handling, computational models of excitation–contraction coupling have been increasingly employed to probe these structure–function relationships. This review will focus on the development of structural models of cardiac calcium dynamics at the subcellular level, orienting the reader broadly towards the development of models of subcellular calcium handling in cardiomyocytes. Specific focus will be given to progress in recent years in terms of multi-scale modeling employing resolved spatial models of subcellular calcium machinery. A review of the state-of-the-art will be followed by a review of emergent insights into calcium-dependent etiologies in heart disease and, finally, we will offer a perspective on future directions for related computational modeling and simulation efforts.
机译:心肌细胞的兴奋-收缩偶联需要钙通过肌膜内的L型钙通道流入,从而通过钙质网ryanodine受体控制钙的释放,这一过程称为钙诱导的钙释放,产生肌钙瞬变并促进心肌细胞的收缩。钙释放,缓冲和再摄取进入肌质网的时空动态在正常和患病心肌细胞的兴奋-收缩偶联中起着核心作用。但是,要进一步定量了解这些细胞的钙机制,并研究构成心脏正常心脏功能和钙依赖性病因的机制,就需要准确了解心脏超微结构,蛋白质分布和亚细胞功能。由于当前的成像技术在空间分辨率上受到限制,限制了钙处理变化的洞察力,因此越来越多地采用激发-收缩耦合的计算模型来探究这些结构-功能关系。这篇综述将侧重于在亚细胞水平上心脏钙动力学的结构模型的开发,使读者广泛地面向心肌细胞中亚细胞钙处理模型的开发。在近年来采用亚细胞钙机制的解析空间模型的多尺度建模方面,将特别关注进展。在回顾最新技术之后,将回顾对心脏病中钙依赖病因的最新见解,最后,我们将提供有关计算模型和仿真工作的未来方向的观点。

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