首页> 美国卫生研究院文献>Frontiers in Physiology >Insights and Challenges of Multi-Scale Modeling of Sarcomere Mechanics in cTn and Tm DCM Mutants—Genotype to Cellular Phenotype
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Insights and Challenges of Multi-Scale Modeling of Sarcomere Mechanics in cTn and Tm DCM Mutants—Genotype to Cellular Phenotype

机译:在cTn和Tm DCM突变体中的肌节力学多尺度建模的见解和挑战-基因型到细胞表型

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摘要

Dilated Cardiomyopathy (DCM) is a leading cause of sudden cardiac death characterized by impaired pump function and dilatation of cardiac ventricles. In this review we discuss various in silico approaches to elucidating the mechanisms of genetic mutations leading to DCM. The approaches covered in this review focus on bridging the spatial and temporal gaps that exist between molecular and cellular processes. Mutations in sarcomeric regulatory thin filament proteins such as the troponin complex (cTn) and Tropomyosin (Tm) have been associated with DCM. Despite the experimentally-observed myofilament measures of contractility in the case of these mutations, the mechanisms by which the underlying molecular changes and protein interactions scale up to organ failure by these mutations remains elusive. The review highlights multi-scale modeling approaches and their applicability to study the effects of sarcomeric gene mutations in-silico. We discuss some of the insights that can be gained from computational models of cardiac biomechanics when scaling from molecular states to cellular level.
机译:扩张型心肌病(DCM)是导致心脏猝死的主要原因,其特征是泵功能受损和心室扩张。在这篇综述中,我们讨论了各种计算机方法,以阐明导致DCM的基因突变的机制。这篇综述所涵盖的方法着重于弥合分子和细胞过程之间存在的时空鸿沟。肌节调节细丝蛋白(如肌钙蛋白复合物(cTn)和肌球蛋白(Tm))的突变与DCM相关。尽管在这些突变的情况下,通过实验观察到的收缩性肌丝测量方法,但潜在的分子变化和蛋白质相互作用扩展至这些突变导致器官衰竭的机制仍然难以捉摸。这篇综述重点介绍了多尺度建模方法及其在计算机上研究肌节基因突变影响的适用性。我们讨论了从分子状态缩放到细胞水平时可以从心脏生物力学计算模型中获得的一些见解。

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