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Moderate Effects of Hypoxic Training at Low and Supramaximal Intensities on Skeletal Muscle Metabolic Gene Expression in Mice

PDK4型 线粒体生物发生 TFAM公司 内科学 骨骼肌 内分泌学 过剩4 缺氧(环境) 腓肠肌 尼泊尔卢比1 巴西金 耐力训练 CD36 下调和上调 糖酵解 化学 生物 新陈代谢 葡萄糖转运蛋白 医学 线粒体 基因 生物化学 胰岛素 氧气 受体 有机化学 基质金属蛋白酶
作者
Svitlana Drozdovska,Nadège Zanou,Jessica Lavier,Lucia Mazzolai,Grégoire P. Millet,Maxime Pellegrin
出处
期刊:Metabolites [MDPI AG]
卷期号:13 (10): 1103-1103 被引量:1
标识
DOI:10.3390/metabo13101103
摘要

The muscle molecular adaptations to different exercise intensities in combination with hypoxia are not well understood. This study investigated the effect of low- and supramaximal-intensity hypoxic training on muscle metabolic gene expression in mice. C57BL/6 mice were divided into two groups: sedentary and training. Training consisted of 4 weeks at low or supramaximal intensity, either in normoxia or hypoxia (FiO2 = 0.13). The expression levels of genes involved in the hypoxia signaling pathway (Hif1a and Vegfa), the metabolism of glucose (Gys1, Glut4, Hk2, Pfk, and Pkm1), lactate (Ldha, Mct1, Mct4, Pdh, and Pdk4) and lipid (Cd36, Fabp3, Ucp2, Hsl, and Mcad), and mitochondrial energy metabolism and biogenesis (mtNd1, mtNd6, CytC, CytB, Pgc1a, Pgc1β, Nrf1, Tfam, and Cs) were determined in the gastrocnemius muscle. No physical performance improvement was observed between groups. In normoxia, supramaximal intensity training caused upregulation of major genes involved in the transport of glucose and lactate, fatty acid oxidation, and mitochondrial biogenesis, while low intensity training had a minor effect. The exposure to hypoxia changed the expression of some genes in the sedentary mice but had a moderate effect in trained mice compared to respective normoxic mice. In hypoxic groups, low-intensity training increased the mRNA levels of Mcad and Cs, while supramaximal intensity training decreased the mRNA levels of Mct1 and Mct4. The results indicate that hypoxic training, regardless of exercise intensity, has a moderate effect on muscle metabolic gene expression in healthy mice.
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