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Denervation drives skeletal muscle atrophy and induces mitochondrial dysfunction, mitophagy and apoptosis via miR-142a-5p/MFN1 axis

机译:假期驱动骨骼肌萎缩并通过MiR-142A-5P / MFN1轴诱导线粒体功能障碍,乳化物和细胞凋亡

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Rationale: Peripheral nerve injury is common in clinic, which leads to severe atrophy and dysfunction of the denervated muscles, but the underlying mechanism is not fully understood. Recent studies advanced the causative role of mitochondrial dysfunction in muscle atrophy, while the upstream triggers remained unclear. Methods: In the present study, Atrophy of gastrocnemius and tibialis anterior (TA) were evaluated in mice sciatic nerve transection model. Transmission electron microscopy (TEM) was then used to observe the microstructure of atrophic gastrocnemius and mitochondria. Subsequently, small RNA sequencing, luciferase reporter assay and Electrophoretic Mobility Shift (EMSA) were performed to explore the potential signaling pathway involved in skeletal muscle atrophy. The effects of the corresponding pathway on mitochondrial function, mitophagy, apoptosis and muscle atrophy were further determined in C2C12 cells and denervated gastrocnemius. Results: Gastrocnemius and TA atrophied rapidly after denervation. Obvious decrease of mitochondria number and activation of mitophagy was further observed in atrophic gastrocnemius. Further, miR-142a-5p/ mitofusin-1 (MFN1) axis was confirmed to be activated in denervated gastrocnemius, which disrupted the tubular mitochondrial network, and induced mitochondrial dysfunction, mitophagy and apoptosis. Furthermore, the atrophy of gastrocnemius induced by denervation was relieved through targeting miR-142a-5p/MFN1 axis. Conclusions: Collectively, our data revealed that miR-142a-5p was able to function as an important regulator of denervation-induced skeletal muscle atrophy by inducing mitochondrial dysfunction, mitophagy, and apoptosis via targeting MFN1. Our findings provide new insights into the mechanism of skeletal muscle atrophy following denervation and propose a viable target for therapeutic intervention in individuals suffering from muscle atrophy after peripheral nerve injury.? The author(s).
机译:理由:外周神经损伤在临床中是常见的,这导致恶劣的萎缩和神经肌肉功能障碍,但潜在的机制尚未完全理解。最近的研究提出了线粒体功能障碍在肌肉萎缩中的致病作用,而上游触发器仍然不清楚。方法:在本研究中,在小鼠坐骨神经转向模型中评估了腓肠肌和胫骨前(TA)的萎缩。然后使用透射电子显微镜(TEM)观察萎缩性胃肠和线粒体的微观结构。随后,进行小RNA测序,荧光素酶报告和电泳迁移率移位(EMSA)以探讨骨骼肌萎缩中涉及的潜在信号通路。在C2C12细胞中进一步确定了相应途径对线粒体函数,细胞凋亡和肌萎缩的影响,并在C2C12细胞中进一步测定了去除的腓肠肌。结果:腓肠肌和胃肠杆菌在嗜睡后迅速萎缩。在萎缩性胃肠炎中进一步观察到线粒体数量和乳化剂活化的明显降低。此外,确认MIR-142A-5P / MITOFUSIN-1(MFN1)轴在不置位的腓肠肌中被激活,其破坏管状线粒体网络,并诱导线粒体功能障碍,细菌和细胞凋亡。此外,通过靶向miR-142a-5p / mfn1轴来缓解通过去神经化诱导的胃肠肿瘤的萎缩。结论:集体,我们的数据显示,MIR-142A-5P能够通过诱导线粒体功能障碍,MITOPAGY和诱导的MFN1来发挥神经障碍诱导的骨骼肌萎缩的重要调节因子。我们的调查结果提供了新的见解,这对骨骼肌萎缩后的骨骼肌萎缩机制提供了新的见解,并提出了在周围神经损伤后患有肌肉萎缩的个体治疗干预的活性疗效。?作者。

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