高强度运动训练诱导骨骼肌苹果酸脱氢酶2的氧化修饰

IF 2.7
Maki Takami , Wataru Aoi , Chinatsu Ando , Yoji Kato , Yukiko Kobayashi , Masashi Kuwahata
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引用次数: 0

摘要

高强度运动训练破坏了骨骼肌的有氧代谢系统。线粒体在有氧代谢和调节肌肉收缩的能量供应中起着至关重要的作用。虽然线粒体功能障碍的详细机制尚不清楚,但高强度运动产生的过多活性氧(ROS)可能与线粒体功能障碍有关。在此,我们研究了高强度运动训练后小鼠肌肉中线粒体蛋白的氧化修饰。雄性ICR小鼠(10周龄)被分为久坐组和高强度运动组。运动组的小鼠每周接受五次跑步机训练,持续两周。测定了大鼠腓肠肌中氧化蛋白修饰水平以及线粒体生物发生和动力学相关因素。与久坐组相比,运动组肌肉线粒体部分的己醇赖氨酸加合物(HEL)和4 -羟基- 2 -烯醛(HNE)修饰蛋白的水平往往更高,而不是整个提取液的水平。具体来说,苹果酸脱氢酶2(一种柠檬酸循环相关酶)的HEL和HNE修饰在运动组小鼠中特别高。虽然运动上调了线粒体生物发生因子,但运动组的动力蛋白相关蛋白1 (Ser637)磷酸化水平较高。这些结果表明,MDH2的氧化修饰损害了高强度运动训练后的代谢系统,这可能与适应性减弱有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High–intensity exercise training induces the oxidative modification of malate dehydrogenase 2 in skeletal muscles

High–intensity exercise training abrogates the aerobic metabolic system in skeletal muscles. Mitochondria play a crucial role in aerobic metabolism and regulate energy supply for muscle contraction. Although the detailed mechanism of mitochondrial dysfunction remains unknown, excessive reactive oxygen species (ROS) generated in response to high–intensity exercise may be involved. Herein, we examined the oxidative modification of mitochondrial proteins in mouse muscle following high–intensity exercise training. Male ICR mice (10–week–old) were divided into sedentary and high–intensity exercise groups. Mice in the exercise group received treadmill training five times per week for two weeks. The levels of oxidative protein modifications and the factors related to mitochondrial biogenesis and dynamics in the gastrocnemius muscle were measured. The levels of hexanoyl lysine adduct (HEL) and 4–hydroxy–2–nonenal (HNE) modified proteins tended to be higher in the muscle mitochondrial fraction, but not whole extractions, of the exercise group than in that of the sedentary group. Specifically, HEL and HNE modifications of malate dehydrogenase 2 (MDH2), a citric acid cycle–related enzyme, were particularly higher in the exercise group mice. Although mitochondrial biogenesis factors were upregulated by exercise, higher phosphorylation of dynamin–related protein 1 (Ser637) was observed in the exercise group. These results suggest that oxidative modification of MDH2 impairs the metabolic system following high–intensity exercise training, which may be associated with attenuated adaptation.

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CiteScore
2.60
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