Laboratory for Myology, Department of Human Movement Sciences, Faculty of Behavioural and Movement Sciences, Vrije Universiteit Amsterdam, Amsterdam Movement Sciences, Amsterdam 1081 HZ, The Netherlands.
Department of Oral Cell Biology, Academic Centre for Dentistry Amsterdam, University of Amsterdam and Vrije Universiteit Amsterdam, Amsterdam Movement Sciences, Amsterdam 1081 LA, The Netherlands.
Aging (Albany NY). 2022 Jan 13;14(1):28-53. doi: 10.18632/aging.203830.
Aging-associated muscle wasting and impaired regeneration are caused by deficiencies in muscle stem cell (MuSC) number and function. We postulated that aged MuSCs are intrinsically impaired in their responsiveness to omnipresent mechanical cues through alterations in MuSC morphology, mechanical properties, and number of integrins, culminating in impaired proliferative capacity. Here we show that aged MuSCs exhibited significantly lower growth rate and reduced integrin-α7 expression as well as lower number of phospho-paxillin clusters than young MuSCs. Moreover, aged MuSCs were less firmly attached to matrigel-coated glass substrates compared to young MuSCs, as 43% of the cells detached in response to pulsating fluid shear stress (1 Pa). YAP nuclear localization was 59% higher than in young MuSCs, yet YAP target genes and were substantially downregulated. When subjected to pulsating fluid shear stress, aged MuSCs exhibited reduced upregulation of proliferation-related genes. Together these results indicate that aged MuSCs exhibit impaired mechanosensitivity and growth potential, accompanied by altered morphology and mechanical properties as well as reduced integrin-α7 expression. Aging-associated impaired muscle regenerative capacity and muscle wasting is likely due to aging-induced intrinsic MuSC alterations and dysfunctional mechanosensitivity.
与衰老相关的肌肉消耗和再生受损是由于肌肉干细胞 (MuSC) 数量和功能的不足引起的。我们推测,衰老的 MuSCs 通过改变 MuSC 形态、力学特性和整合素的数量,内在地对普遍存在的机械线索的反应能力受损,最终导致增殖能力受损。在这里,我们发现衰老的 MuSCs 的生长速度明显较低,整合素-α7 的表达减少,磷酸化的粘着斑蛋白簇的数量也比年轻的 MuSCs 少。此外,与年轻的 MuSCs 相比,衰老的 MuSCs 与涂有基质胶的玻璃底物的附着性较差,因为有 43%的细胞在响应脉动流体切应力 (1 Pa) 时脱落。YAP 的核定位比年轻的 MuSCs 高 59%,但 YAP 的靶基因 和 则显著下调。当受到脉动流体切应力时,衰老的 MuSCs 中与增殖相关的基因的上调表达减少。这些结果表明,衰老的 MuSCs 表现出机械敏感性和生长潜力受损,同时伴有形态和力学特性改变以及整合素-α7 表达减少。与衰老相关的肌肉再生能力受损和肌肉消耗很可能是由于衰老诱导的内在 MuSC 改变和功能失调的机械敏感性所致。