Protein kinase ROCK1 activates mitochondrial fission linking to oxidative stress and muscle atrophy.

IF 14.8 1区 医学 Q1 UROLOGY & NEPHROLOGY
Meijun Si, Jihong Chen, Rizhen Yu, Hongchun Lin, Feng Li, Sungyun Jung, Sandhya S Thomas, Farhard R Danesh, Yanlin Wang, Hui Peng, Zhaoyong Hu
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Abstract

Introduction: Chronic kidney disease (CKD) is associated with protein-energy wasting, characterized by a reduction in muscle mass and strength. Although mitochondrial dysfunction and oxidative stress are implicated in the pathogenesis of muscle wasting, underlying mechanisms remain unclear.

Methods: Here, we used transcriptomic analysis, metabolomics analyses, and mouse gene manipulation to investigate the effects of mitochondrial plasticity and oxidative stress on muscle wasting the subtotal nephrectomy mouse models of CKD. The mice with CKD were age- and sex-matched to sham-operated controls.

Results: Through these approaches, Rho-associated kinase ROCK1 emerged as a key molecule responsible for the observed mitochondrial fission and oxidative stress. Specifically, our results showed that the expression of oxidative stress response genes increased, and that of oxidative phosphorylation genes decreased in the muscles of mice with CKD. This was accompanied by reduced oxygen consumption rates, decreased levels of mitochondrial electron transport chain proteins, and increased cellular oxidative damage. Excessive mitochondrial fission was also observed, and we found that the activation of ROCK1 was responsible for this process. Inducible expression of muscle-specific constitutively active ROCK1 exacerbated mitochondrial fragmentation and muscle wasting in CKD mice. Conversely, ROCK1 depletion (ROCK1-/-) alleviated these phenomena. Mechanistically, ROCK1 activation promoted the recruitment of dynamin-related protein 1 to mitochondria, thereby facilitating mitochondrial fission. Notably, pharmacological inhibition of ROCK1 mitigated muscle wasting by suppressing mitochondrial fission and oxidative stress.

Conclusions: Our findings demonstrate that ROCK1 participates in CKD-induced muscle wasting by promoting mitochondrial fission and oxidative stress. Pharmacological suppression of ROCK1 could be a therapeutic strategy for combating muscle wasting in CKD conditions.

蛋白激酶ROCK1激活线粒体裂变,与氧化应激和肌肉萎缩有关。
慢性肾脏疾病(CKD)与蛋白质能量消耗有关,其特征是肌肉质量和力量的减少。虽然线粒体功能障碍和氧化应激与肌肉萎缩的发病机制有关,但其潜在机制尚不清楚。方法:通过转录组学分析、代谢组学分析和小鼠基因操作,研究线粒体可塑性和氧化应激对CKD次全肾切除小鼠模型肌肉萎缩的影响。CKD小鼠的年龄和性别与假手术对照组相匹配。结果:通过这些方法,rho相关激酶ROCK1成为观察到的线粒体裂变和氧化应激的关键分子。具体来说,我们的研究结果表明,CKD小鼠肌肉中氧化应激反应基因的表达增加,氧化磷酸化基因的表达减少。这伴随着氧气消耗速率降低,线粒体电子传递链蛋白水平降低,细胞氧化损伤增加。过量的线粒体分裂也被观察到,我们发现ROCK1的激活是这个过程的原因。诱导表达肌肉特异性组成活性ROCK1加剧了CKD小鼠的线粒体断裂和肌肉萎缩。相反,ROCK1耗竭(ROCK1-/-)则缓解了这些现象。从机制上讲,ROCK1的激活促进了动力蛋白相关蛋白1向线粒体的募集,从而促进了线粒体的裂变。值得注意的是,ROCK1的药理抑制通过抑制线粒体裂变和氧化应激来减轻肌肉萎缩。结论:我们的研究结果表明,ROCK1通过促进线粒体裂变和氧化应激参与ckd诱导的肌肉萎缩。药理抑制ROCK1可能是对抗CKD条件下肌肉萎缩的治疗策略。
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来源期刊
Kidney international
Kidney international 医学-泌尿学与肾脏学
CiteScore
23.30
自引率
3.10%
发文量
490
审稿时长
3-6 weeks
期刊介绍: Kidney International (KI), the official journal of the International Society of Nephrology, is led by Dr. Pierre Ronco (Paris, France) and stands as one of nephrology's most cited and esteemed publications worldwide. KI provides exceptional benefits for both readers and authors, featuring highly cited original articles, focused reviews, cutting-edge imaging techniques, and lively discussions on controversial topics. The journal is dedicated to kidney research, serving researchers, clinical investigators, and practicing nephrologists.
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