Marchena Miquel, Echebarria Blas
Departament de Física, Universitat Politècnica de Catalunya, Barcelona, Spain.
Front Physiol. 2018 Dec 10;9:1760. doi: 10.3389/fphys.2018.01760. eCollection 2018.
In cardiac cells, calcium is the mediator of excitation-contraction coupling. Dysfunctions in calcium handling have been identified as the origin of some cardiac arrhythmias. In the particular case of atrial myocytes, recent available experimental data has found links between these dysfunctions and structural changes in the calcium handling machinery (ryanodine cluster size and distribution, t-tubular network, etc). To address this issue, we have developed a computational model of an atrial myocyte that takes into account the detailed intracellular structure. The homogenized macroscopic behavior is described with a two-concentration field model, using effective diffusion coefficients of calcium in the sarcoplasmic reticulum (SR) and in the cytoplasm. The model reproduces the right calcium transients and dependence with pacing frequency. Under basal conditions, the calcium rise is mostly restricted to the periphery of the cell, with a large concentration ratio between the periphery and the interior. We have then studied the dependence of the speed of the calcium wave on cytosolic and SR diffusion coefficients, finding an almost linear relation with the former, in agreement with a diffusive and fire mechanism of propagation, and little dependence on the latter. Finally, we have studied the effect of a change in RyR cluster microstructure. We find that, under resting conditions, the spark frequency decreases slightly with RyR cluster spatial dispersion, but markedly increases when the RyRs are distributed in clusters of larger size, stressing the importance of RyR cluster organization to understand atrial arrhythmias, as recent experimental results suggest (Macquaide et al., 2015).
在心肌细胞中,钙是兴奋 - 收缩偶联的介质。钙处理功能障碍已被确定为某些心律失常的根源。在心房肌细胞的特定情况下,最近可得的实验数据发现了这些功能障碍与钙处理机制的结构变化(兰尼碱簇大小和分布、横管网络等)之间的联系。为了解决这个问题,我们开发了一个考虑详细细胞内结构的心房肌细胞计算模型。用双浓度场模型描述均匀化的宏观行为,使用钙在肌浆网(SR)和细胞质中的有效扩散系数。该模型再现了正确的钙瞬变及其对起搏频率的依赖性。在基础条件下,钙的升高主要局限于细胞周边,周边与内部之间存在较大的浓度比。然后我们研究了钙波速度对胞质和SR扩散系数的依赖性,发现与前者几乎呈线性关系,这与扩散和触发传播机制一致,而对后者的依赖性较小。最后,我们研究了兰尼碱受体(RyR)簇微观结构变化的影响。我们发现,在静息条件下,火花频率随RyR簇空间分散略有下降,但当RyR分布在更大尺寸的簇中时显著增加,这强调了RyR簇组织对理解房性心律失常的重要性,正如最近的实验结果所表明的那样(Macquaide等人,2015年)。