分子水平上的电物理心脏重塑:从随机显式粒子模型深入了解瑞诺丁受体激活和钙诱导的钙释放。

IF 3.2 3区 生物学 Q2 BIOPHYSICS
Sophia P Hirakis, Thomas M Bartol, Ludovic Autin, Rommie E Amaro, Terrence J Sejnowski
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引用次数: 0

摘要

我们首次提出了完全离散的触发式心脏钙动力学随机模型。利用解剖学上精确的亚细胞心肌细胞几何图形,我们在单个心脏二联体交界处的水平上使用高分辨率随机和显式粒子方法模拟了参与钙处理的分子角色。该模型整合了多个实验来源的数据,不仅复制了传统硅学研究的结果,补充了体外实验数据,还揭示了压力和疾病条件下驱动心脏功能障碍的分子机制的新见解。我们采用同样逼真的几何结构,结合自发和触发钙诱导钙释放(CICR)的分子机制,改进了旧的非离散模型。动作电位用于激活 L 型钙通道 (LTCC),通过肌质网表面的瑞诺丁受体 (RyR) 触发 CICR。这些改进使得我们能够特别关注耦合子:LTCC 和 RyR 之间的结构-功能关系。我们研究了正常和病态动作电位对 CICR 的电物理效应,并通过 RyR 的脱管和孤岛化研究了二元结变形的效应。我们的工作证明了 CRU 的电物理完整性对 CICR 保真度的重要性,从而揭示了心脏病的分子基础。最后,我们利用先进的渲染技术提供了一个独特、详细的 CICR 过程分子视图。这种易于使用的模型配有完整的教程和所有必要的使用和分析软件,以最大限度地提高可用性和可重复性。我们的工作重点是量化、鉴定和可视化分子物种的行为,这些分子物种是亚细胞心肌细胞系统功能和功能障碍的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrophysical cardiac remodeling at the molecular level: insights into Ryanodine Receptor activation and calcium-induced calcium release from a stochastic explicit-particle model.

We present the first-ever, fully-discrete, stochastic model of triggered cardiac calcium dynamics. Using anatomically accurate subcellular cardiac myocyte geometries, we simulate the molecular players involved in calcium handling using high-resolution stochastic and explicit-particle methods at the level of an individual cardiac dyadic junction. Integrating data from multiple experimental sources, the model not only replicates the findings of traditional in silico studies and complements in vitro experimental data, but also reveals new insights into the molecular mechanisms driving cardiac dysfunction under stress and disease conditions. We improve upon older, non-discrete models using the same realistic geometry by incorporating molecular mechanisms for spontaneous, as well as triggered Calcium-Induced Calcium Release (CICR). Action potentials are used to activate L-type calcium channels (LTCCs), triggering CICR through Ryanodine receptors (RyR) on the surface of the sarcoplasmic reticulum. These improvements allow for the specific focus on the couplon: the structure-function relationship between LTCC and RyR. We investigate the electrophysical effects of normal and diseased action potentials on CICR and interrogate the effects of dyadic junction deformation through detubulation and orphaning of RyR. Our work demonstrates the importance of the electrophysical integrity of the CRU on CICR fidelity, giving insights into the molecular basis of heart disease. Finally, we provide a unique, detailed, molecular view of the CICR process using advanced rendering techniques. This easy-to-use model comes complete with tutorials and all necessary software for use and analysis so as to maximize usability and reproducibility. Our work focuses on quantifying, qualifying, and visualizing the behavior of the molecular species that underlie the function and dysfunction of subcellular cardiomyocyte systems.

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来源期刊
Biophysical journal
Biophysical journal 生物-生物物理
CiteScore
6.10
自引率
5.90%
发文量
3090
审稿时长
2 months
期刊介绍: BJ publishes original articles, letters, and perspectives on important problems in modern biophysics. The papers should be written so as to be of interest to a broad community of biophysicists. BJ welcomes experimental studies that employ quantitative physical approaches for the study of biological systems, including or spanning scales from molecule to whole organism. Experimental studies of a purely descriptive or phenomenological nature, with no theoretical or mechanistic underpinning, are not appropriate for publication in BJ. Theoretical studies should offer new insights into the understanding ofexperimental results or suggest new experimentally testable hypotheses. Articles reporting significant methodological or technological advances, which have potential to open new areas of biophysical investigation, are also suitable for publication in BJ. Papers describing improvements in accuracy or speed of existing methods or extra detail within methods described previously are not suitable for BJ.
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