Institute of Physiology II, University of Münster, 48149 Münster, Germany; email:
Deutsches Zentrum für Herz-Kreislaufforschung, Partner Site Göttingen, 37073 Göttingen, Germany.
Annu Rev Physiol. 2018 Feb 10;80:389-411. doi: 10.1146/annurev-physiol-021317-121234. Epub 2017 Nov 13.
The thin and thick filaments of muscle sarcomeres are interconnected by the giant protein titin, which is a scaffolding filament, signaling platform, and provider of passive tension and elasticity in myocytes. This review summarizes recent insight into the mechanisms behind how titin gene mutations cause hereditary cardiomyopathy and how titin protein is mechanically active in skeletal and cardiac myocytes. A main theme is the evolving role of titin as a modulator of contraction. Topics include strain-sensing via titin in the sarcomeric A-band as the basis for length-dependent activation, titin elastic recoil and refolding of titin domains as an energy source, and Ca-dependent stiffening of titin stretched during eccentric muscle contractions. Findings suggest that titin stiffness is a principal regulator of the contractile behavior of striated muscle. Physiological or pathological changes to titin stiffness therefore affect contractility. Taken together, titin emerges as a linker element between passive and active myocyte properties.
肌节的细肌丝和粗肌丝由巨大蛋白titin 相互连接,titin 是一种支架丝、信号平台,也是肌细胞中被动张力和弹性的提供者。这篇综述总结了最近关于 titin 基因突变如何导致遗传性心肌病的机制的深入了解,以及 titin 蛋白在骨骼和心肌细胞中如何具有机械活性。一个主要主题是 titin 作为收缩调节剂的作用不断发展。主题包括通过肌节 A 带中的 titin 进行应变感知,作为长度依赖性激活的基础,titin 弹性回弹和 titin 结构域的重折叠作为能量源,以及在偏心肌肉收缩期间伸展的 titin 的 Ca 依赖性变硬。研究结果表明,titin 的硬度是横纹肌收缩行为的主要调节因子。因此,titin 硬度的生理或病理变化会影响收缩性。总之,titin 成为被动和主动肌细胞特性之间的连接元素。