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Piezo1 表达和活性的精细调节确保了骨骼肌发生过程中肌细胞的有效融合。

Fine-Tuning of Piezo1 Expression and Activity Ensures Efficient Myoblast Fusion during Skeletal Myogenesis.

机构信息

Department of Physiology, Graduate School of Health Sciences, Toyohashi SOZO University, Aichi, Toyohashi 440-0016, Japan.

Randall Centre for Cell and Molecular Biophysics, King's College London, London SE1 1UL, UK.

出版信息

Cells. 2022 Jan 24;11(3):393. doi: 10.3390/cells11030393.

Abstract

Mechanical stimuli, such as stretch and resistance training, are essential in regulating the growth and functioning of skeletal muscles. However, the molecular mechanisms involved in sensing mechanical stress during muscle formation remain unclear. Here, we investigated the role of the mechanosensitive ion channel Piezo1 during myogenic progression of both fast and slow muscle satellite cells. We found that Piezo1 level increases during myogenic differentiation and direct manipulation of Piezo1 in muscle stem cells alters the myogenic progression. Indeed, Piezo1 knockdown suppresses myoblast fusion, leading to smaller myotubes. Such an event is accompanied by significant downregulation of the fusogenic protein . In parallel, while Piezo1 knockdown also lowers Ca influx in response to stretch, Piezo1 activation increases Ca influx in response to stretch and enhances myoblasts fusion. These findings may help understand molecular defects present in some muscle diseases. Our study shows that Piezo1 is essential for terminal muscle differentiation acting on myoblast fusion, suggesting that Piezo1 deregulation may have implications in muscle aging and degenerative diseases, including muscular dystrophies and neuromuscular disorders.

摘要

机械刺激,如拉伸和抗阻训练,对于调节骨骼肌肉的生长和功能至关重要。然而,在肌肉形成过程中感受机械应激的分子机制仍不清楚。在这里,我们研究了机械敏感离子通道 Piezo1 在快肌和慢肌卫星细胞的成肌进展中的作用。我们发现 Piezo1 的水平在成肌分化过程中增加,并且直接在肌肉干细胞中操纵 Piezo1 会改变成肌进展。事实上,Piezo1 的敲低会抑制成肌融合,导致肌管变小。这种情况伴随着融合蛋白的显著下调。与此平行,尽管 Piezo1 的敲低也降低了对拉伸的 Ca 流入的反应,但 Piezo1 的激活增加了对拉伸的 Ca 流入,并增强了成肌融合。这些发现可能有助于理解一些肌肉疾病中存在的分子缺陷。我们的研究表明,Piezo1 对于终末肌肉分化是必需的,作用于成肌融合,这表明 Piezo1 的失调可能对肌肉衰老和退行性疾病(包括肌肉营养不良和神经肌肉疾病)有影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10d9/8834081/313ca572319b/cells-11-00393-g001.jpg

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