Increased Matrix Stiffness Promotes Slow Muscle Fibre Regeneration After Skeletal Muscle Injury

Dongmei Wang, Jiahong Wu, Zeyu Xu, Jinning Jia, Yimei Lai, Zhihua He
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Abstract

The global prevalence of skeletal muscle diseases has progressively escalated in recent years. This study aimed to explore the potential role of matrix stiffness in the repair mechanisms following skeletal muscle injury. We observed an increase in muscle stiffness, a significant rise in the number of type I muscle fibres and a notable elevation in mRNA expression levels of Myh7/2 alongside a decrease in Myh1/4 on day 3 post tibialis anterior muscle injury. To replicate these in vivo changes, C2C12 cells were cultured under high matrix stiffness conditions, and compared to those on low matrix stiffness, the C2C12 cells cultured on high matrix stiffness showed increased expression levels of Myh7/2 mRNA and production levels of MYH7/2, indicating differentiation into slow-twitch muscle fibre types. Furthermore, up-regulation of DRP1 phosphorylation along with elevated F-actin fluorescence intensity and RHOA and ROCK1 production indicates that high matrix stiffness induces cytoskeletal remodelling to regulate mitochondrial fission processes. Our data also revealed up-regulation in mRNA expression level for Actb, phosphorylation level for DRP1, mitochondrial quantity and MYH7/2 production level. Importantly, these effects were effectively reversed by the application of ROCK inhibitor Y-27632, highlighting that targeting cytoskeletal dynamics can modulate myogenic differentiation pathways within C2C12 cells. These findings provide valuable insights into how matrix stiffness influences fibre type transformation during skeletal muscle injury repair while suggesting potential therapeutic targets for intervention.

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增加基质刚度促进骨骼肌损伤后缓慢的肌纤维再生
近年来,骨骼肌疾病的全球患病率逐渐上升。本研究旨在探讨基质刚度在骨骼肌损伤后修复机制中的潜在作用。我们观察到,在胫骨前肌损伤后第3天,肌肉僵硬度增加,I型肌纤维数量显著增加,Myh7/2 mRNA表达水平显著升高,Myh1/4 mRNA表达水平下降。为了在体内复制这些变化,我们在高基质刚度条件下培养C2C12细胞,与低基质刚度条件下培养的C2C12细胞相比,高基质刚度条件下培养的C2C12细胞Myh7/2 mRNA的表达水平和Myh7/2的生成水平均有所增加,表明细胞向慢肌纤维类型分化。此外,DRP1磷酸化的上调以及f -肌动蛋白荧光强度的升高以及RHOA和ROCK1的产生表明,高基质刚度诱导细胞骨架重塑,从而调节线粒体裂变过程。我们的数据还显示,Actb mRNA表达水平上调,DRP1磷酸化水平上调,线粒体数量上调,MYH7/2产生水平上调。重要的是,ROCK抑制剂Y-27632的应用有效地逆转了这些效应,强调靶向细胞骨架动力学可以调节C2C12细胞内的肌源性分化途径。这些发现为骨骼肌损伤修复过程中基质刚度如何影响纤维类型转化提供了有价值的见解,同时提出了潜在的干预治疗靶点。
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期刊介绍: The Journal of Cellular and Molecular Medicine serves as a bridge between physiology and cellular medicine, as well as molecular biology and molecular therapeutics. With a 20-year history, the journal adopts an interdisciplinary approach to showcase innovative discoveries. It publishes research aimed at advancing the collective understanding of the cellular and molecular mechanisms underlying diseases. The journal emphasizes translational studies that translate this knowledge into therapeutic strategies. Being fully open access, the journal is accessible to all readers.
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