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肌联蛋白在细胞骨架对心肌被动僵硬的贡献中占据中心地位。

Titin takes centerstage among cytoskeletal contributions to myocardial passive stiffness.

机构信息

Institute of Physiology II, University of Muenster, Muenster, Germany.

出版信息

Cytoskeleton (Hoboken). 2024 Feb-Mar;81(2-3):184-187. doi: 10.1002/cm.21827. Epub 2023 Dec 29.

Abstract

Both diastolic filling and systolic pumping of the heart are dependent on the passive stiffness characteristics of various mechanical elements of myocardium. However, the specific contribution from each element, including the extracellular matrix, actin filaments, microtubules, desmin intermediate filaments, and sarcomeric titin springs, remains challenging to assess. Recently, a mouse model allowing for precise and acute cleavage of the titin springs was used to remove one mechanical element after the other from cardiac fibers and record the effect on passive stiffness. It became clear that the stiffness contribution from each element is context-dependent and varies depending on strain level and the force component considered (elastic or viscous); elements do not act in isolation but in a tensegral relationship. Titin is a substantial contributor under all conditions and dominates the elastic forces at both low and high strains. The contribution to viscous forces is more equally shared between microtubules, titin, and actin. However, the extracellular matrix substantially contributes to both force components at higher strain levels. Desmin filaments may bear low stiffness. These insights enhance our understanding of how different filament networks contribute to passive stiffness in the heart and offer new perspectives for targeting this stiffness in heart failure treatment.

摘要

心脏的舒张填充和收缩泵血都依赖于心室各机械元件的被动硬度特性。然而,包括细胞外基质、肌动蛋白丝、微管、结蛋白中间丝和肌节titin 弹簧在内的每个元件的具体贡献仍然难以评估。最近,使用一种允许精确和急性切割 titin 弹簧的小鼠模型,从心肌纤维中逐个去除机械元件,并记录对被动硬度的影响。结果表明,每个元件的硬度贡献是上下文相关的,并且取决于应变水平和考虑的力分量(弹性或粘性)而变化;元件不是孤立作用,而是以整体关系作用。在所有条件下,titin 都是一个重要的贡献者,在低应变和高应变下都主导着弹性力。微管、titin 和肌动蛋白在粘性力方面的贡献更为平均。然而,细胞外基质在较高应变水平下对两个力分量都有很大的贡献。结蛋白丝可能具有较低的硬度。这些见解增强了我们对不同的细丝网络如何在心脏的被动硬度中发挥作用的理解,并为心力衰竭治疗中靶向这种硬度提供了新的视角。

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