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Local Vibration Stimuli Induce Mechanical Stress-Induced Factors and Facilitate Recovery From Immobilization-Induced Oxidative Myofiber Atrophy in Rats

机译:局部振动刺激诱导机械应力诱导的因素并从固定化诱导的大鼠氧化性肌纤维萎缩中促进恢复

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摘要

Muscle atrophy can be caused by unloading stress such as microgravity environments or cast immobilization. Therapies for such disuse muscle atrophy and their underlying mechanisms are incompletely understood. Here, we investigated the therapeutic effects of local vibration stimulation on immobilization-induced skeletal muscle atrophy. A rat model was made by placing the left hindlimb in a cast for 1 week, leading to oxidative myofiber atrophy without myopathic changes in soleus skeletal muscle. Vibration stimulus (90 Hz, 15 min) to the plantar fascia of the atrophic hindlimb was performed once a day using a hand-held vibration massager after removal of a cast at the end of the immobilization period. After 2 weeks, rats were dissected, and quantitative analysis of the cross-sectional areas of soleus myofibers was performed. The results revealed that vibration induced significant recovery from disuse muscle atrophy, compared with untreated immobilized samples. Furthermore, vibration treatment suppressed the fiber transition from slow to fast fiber types compared with vibration-untreated immobilized samples. Western blotting analyses of mechanical stress-induced factors revealed that the expression of mechano-growth factor (MGF), systemic insulin-like growth factor I, and the mechanotransduction protein, Yes-associated protein 1 (YAP1), was decreased in untreated immobilized soleus muscle, whereas vibration stimulation restored their expression. No change in the level of phosphorylation of YAP1Ser127 was observed, leading to no change in p-YAP1/YAP1 ratio in vibration-treated immobilized soleus muscle. The results indicate that vibration stimulus is effective to restore immobilization-induced inactivation of YAP1 pathway. Phosphorylation of ERK 1/2, but not AKT, was enhanced in vibration-treated immobilized soleus muscle. Furthermore, vibration stimuli restored immobilization-induced downregulation of the paired box transcription factor, PAX7, a critical factor for regenerative myogenesis in muscle satellite cells. Our results indicate that cyclic vibration stimuli are effective in activating satellite cells and facilitate recovery from immobilization-induced oxidative myofiber atrophy through upregulation of MGF and YAP1.
机译:肌肉萎缩可能是由于卸载压力(例如微重力环境或石膏固定)引起的。对于这种废用性肌肉萎缩的疗法及其潜在机制尚不完全清楚。在这里,我们调查了固定刺激引起的骨骼肌萎缩的局部振动刺激的治疗效果。通过将左后肢放置在石膏模型中1周来制作大鼠模型,导致氧化性肌纤维萎缩,而比目鱼骨骼肌无肌病性改变。在固定期结束后去除铸模后,每天使用手持式振动按摩器对萎缩性后肢的足底筋膜进行振动刺激(90 Hz,15分钟)。 2周后,解剖大鼠,并对比目鱼肌纤维的横截面积进行定量分析。结果表明,与未处理的固定样本相比,振动可导致废弃肌肉萎缩的明显恢复。此外,与未振动处理的固定样品相比,振动处理抑制了纤维从慢速纤维到快速纤维的转变。机械应力诱导因子的蛋白质印迹分析表明,在未经治疗的固定比目鱼中,机械生长因子(MGF),系统性胰岛素样生长因子I和机械转导蛋白Yes相关蛋白1(YAP1)的表达降低了。肌肉,而振动刺激恢复了它们的表达。没有观察到YAP1 Ser127 的磷酸化水平的变化,导致在振动治疗的比目鱼肌中p-YAP1 / YAP1的比例没有变化。结果表明,振动刺激有效地恢复了固定化诱导的YAP1途径的失活。振动处理的固定比目鱼肌增强了ERK 1/2的磷酸化,但未增强AKT。此外,振动刺激恢复了配对盒转录因子PAX7的固定化诱导的下调,PAX7是肌肉卫星细胞再生肌发生的关键因素。我们的结果表明,周期性振动刺激可有效激活卫星细胞,并通过上调MGF和YAP1促进从固定化诱导的氧化性肌纤维萎缩中恢复。

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