Skeletal muscle-specific Keap1 disruption modulates fatty acid utilization and enhances exercise capacity in female mice

骨骼肌特异性Keap1基因敲除可调节脂肪酸利用率并增强雌性小鼠的运动能力

阅读:4
作者:Takahiro Onoki ,Yoshihiro Izumi ,Masatomo Takahashi ,Shohei Murakami ,Daisuke Matsumaru ,Nao Ohta ,Sisca Meida Wati ,Nozomi Hatanaka ,Fumiki Katsuoka ,Mitsuharu Okutsu ,Yutaka Yabe ,Yoshihiro Hagiwara ,Makoto Kanzaki ,Takeshi Bamba ,Eiji Itoi ,Hozumi Motohashi

Abstract

Skeletal muscle health is important for the prevention of various age-related diseases. The loss of skeletal muscle mass, which is known as sarcopenia, underlies physical disability, poor quality of life and chronic diseases in elderly people. The transcription factor NRF2 plays important roles in the regulation of the cellular defense against oxidative stress, as well as the metabolism and mitochondrial activity. To determine the contribution of skeletal muscle NRF2 to exercise capacity, we conducted skeletal muscle-specific inhibition of KEAP1, which is a negative regulator of NRF2, and examined the cell-autonomous and non-cell-autonomous effects of NRF2 pathway activation in skeletal muscles. We found that NRF2 activation in skeletal muscles increased slow oxidative muscle fiber type and improved exercise endurance capacity in female mice. We also observed that female mice with NRF2 pathway activation in their skeletal muscles exhibited enhanced exercise-induced mobilization and β-oxidation of fatty acids. These results indicate that NRF2 activation in skeletal muscles promotes communication with adipose tissues via humoral and/or neuronal signaling and facilitates the utilization of fatty acids as an energy source, resulting in increased mitochondrial activity and efficient energy production during exercise, which leads to improved exercise endurance. Keywords: Beta-oxidation; Exercise; Fatty acid; KEAP1-NRF2 system; Skeletal muscle.

特别声明

1、本页面内容包含部分的内容是基于公开信息的合理引用;引用内容仅为补充信息,不代表本站立场。

2、若认为本页面引用内容涉及侵权,请及时与本站联系,我们将第一时间处理。

3、其他媒体/个人如需使用本页面原创内容,需注明“来源:[生知库]”并获得授权;使用引用内容的,需自行联系原作者获得许可。

4、投稿及合作请联系:info@biocloudy.com。