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次黄嘌呤通过UCP2诱导肌肉ATP耗竭和疲劳。

Hypoxanthine Induces Muscular ATP Depletion and Fatigue via UCP2.

作者信息

Yin Cong, Ma Zewei, Li Fan, Duan Chen, Yuan Yexian, Zhu Canjun, Wang Lina, Zhu Xiaotong, Wang Songbo, Gao Ping, Shu Gang, Zhang Huihua, Jiang Qingyan

机构信息

Guangdong Laboratory of Lingnan Modern Agriculture, National Engineering Research Center for Breeding Swine Industry and Guangdong Province Key Laboratory of Animal Nutritional Regulation, College of Animal Science, South China Agricultural University, Guangzhou, China.

College of Life and Science, Foshan University, Foshan, China.

出版信息

Front Physiol. 2021 Mar 3;12:647743. doi: 10.3389/fphys.2021.647743. eCollection 2021.

Abstract

Hypoxanthine (Hx), an intermediate metabolite of the purine metabolism pathway which is dramatically increased in blood and skeletal muscle during muscle contraction and metabolism, is characterized as a marker of exercise exhaustion. However, the physiological effects of Hx on skeletal muscle remain unknown. Herein, we demonstrate that chronic treatment with Hx through dietary supplementation resulted in skeletal muscle fatigue and impaired the exercise performance of mice without affecting their growth and skeletal muscle development. Hx increased the uncoupling protein 2 (UCP2) expression in the skeletal muscle, which led to decreased energy substrate storage and enhanced glycolysis. These effects could also be verified in acute treatment with Hx through intraperitoneal injection. In addition, muscular specifically knockout of UCP2 through intra-muscle tissue injection of adenovirus-associated virus reversed the effects of Hx. In conclusion, we identified a novel role of Hx in the skeletal muscular fatigue mediated by UCP2-dependent mitochondrial uncoupling. This finding may shed light on the pathological mechanism of clinical muscle dysfunctions due to abnormal metabolism, such as muscle fatigue and weakness.

摘要

次黄嘌呤(Hx)是嘌呤代谢途径的一种中间代谢产物,在肌肉收缩和代谢过程中,其在血液和骨骼肌中的含量会显著增加,被视作运动疲劳的一个标志物。然而,Hx对骨骼肌的生理作用仍不清楚。在此,我们证明,通过饮食补充剂长期给予Hx会导致骨骼肌疲劳,并损害小鼠的运动表现,但不影响其生长和骨骼肌发育。Hx增加了骨骼肌中解偶联蛋白2(UCP2)的表达,这导致能量底物储存减少,糖酵解增强。通过腹腔注射Hx进行急性处理也能证实这些效应。此外,通过肌肉组织注射腺相关病毒在肌肉中特异性敲除UCP2可逆转Hx的作用。总之,我们确定了Hx在由UCP2依赖性线粒体解偶联介导的骨骼肌疲劳中的新作用。这一发现可能有助于阐明因代谢异常导致的临床肌肉功能障碍的病理机制,如肌肉疲劳和无力。

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