肌节
肌丝
肌钙蛋白
扩张型心肌病
原肌球蛋白
内科学
肌钙蛋白T
心脏病学
心肌
心功能曲线
心力衰竭
张力(地质)
肌钙蛋白C
转基因小鼠
化学
医学
转基因
心肌细胞
肌动蛋白
材料科学
生物化学
基因
心肌梗塞
极限抗拉强度
冶金
作者
Joseph D. Powers,Kristina B. Kooiker,Allison B. Mason,Abigail E. Teitgen,Galina Flint,Jil C. Tardiff,Steven D. Schwartz,Andrew D. McCulloch,Michael Regnier,Jennifer Davis,Farid Moussavi‐Harami
出处
期刊:JCI insight
[American Society for Clinical Investigation]
日期:2020-09-15
卷期号:5 (20)
被引量:33
标识
DOI:10.1172/jci.insight.142446
摘要
Dilated cardiomyopathy (DCM) is often associated with sarcomere protein mutations that confer reduced myofilament tension-generating capacity. We demonstrated that cardiac twitch tension-time integrals can be targeted and tuned to prevent DCM remodeling in hearts with contractile dysfunction. We employed a transgenic murine model of DCM caused by the D230N-tropomyosin (Tm) mutation and designed a sarcomere-based intervention specifically targeting the twitch tension-time integral of D230N-Tm hearts using multiscale computational models of intramolecular and intermolecular interactions in the thin filament and cell-level contractile simulations. Our models predicted that increasing the calcium sensitivity of thin filament activation using the cardiac troponin C (cTnC) variant L48Q can sufficiently augment twitch tension-time integrals of D230N-Tm hearts. Indeed, cardiac muscle isolated from double-transgenic hearts expressing D230N-Tm and L48Q cTnC had increased calcium sensitivity of tension development and increased twitch tension-time integrals compared with preparations from hearts with D230N-Tm alone. Longitudinal echocardiographic measurements revealed that DTG hearts retained normal cardiac morphology and function, whereas D230N-Tm hearts developed progressive DCM. We present a computational and experimental framework for targeting molecular mechanisms governing the twitch tension of cardiomyopathic hearts to counteract putative mechanical drivers of adverse remodeling and open possibilities for tension-based treatments of genetic cardiomyopathies.
科研通智能强力驱动
Strongly Powered by AbleSci AI