Unlocking peak performance: The role of Nrf2 in enhancing exercise outcomes and training adaptation in humans.

IF 7.1 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Free Radical Biology and Medicine Pub Date : 2024-08-14 DOI:10.1016/j.freeradbiomed.2024.08.011
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Abstract

Since the discovery of the nuclear factor erythroid-derived 2-like 2 (Nrf2) transcription factor thirty years ago, it has been shown that it regulates more than 250 genes involved in a multitude of biological processes, including redox balance, mitochondrial biogenesis, metabolism, detoxification, cytoprotection, inflammation, immunity, autophagy, cell differentiation, and xenobiotic metabolism. In skeletal muscle, Nrf2 signalling is primarily activated in response to perturbation of redox balance by reactive oxygen species or electrophiles. Initial investigations into human skeletal muscle Nrf2 responses to exercise, dating back roughly a decade, have consistently indicated that exercise-induced ROS production stimulates Nrf2 signalling. Notably, recent studies employing Nrf2 knockout mice have revealed impaired skeletal muscle contractile function characterised by reduced force output and increased fatigue susceptibility compared to wild-type counterparts. These deficiencies partially stem from diminished basal mitochondrial respiratory capacity and an impaired capacity to upregulate specific mitochondrial proteins in response to training, findings corroborated by inducible muscle-specific Nrf2 knockout models. In humans, baseline Nrf2 expression in skeletal muscle correlates with maximal oxygen uptake and high-intensity exercise performance. This manuscript delves into the mechanisms underpinning Nrf2 signalling in response to acute exercise in human skeletal muscle, highlighting the involvement of ROS, antioxidants and Keap1/Nrf2 signalling in exercise performance. Furthermore, it explores Nrf2's role in mediating adaptations to chronic exercise and its impact on overall exercise performance. Additionally, the influence of diet and certain supplements on basal Nrf2 expression and its role in modulating acute and chronic exercise responses are briefly addressed.

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开启巅峰表现:Nrf2 在提高人类运动效果和训练适应性中的作用。
自三十年前发现核因子红细胞衍生 2-like 2(Nrf2)转录因子以来,已有研究表明 Nrf2 可调控 250 多个基因,这些基因参与多种生物过程,包括氧化还原平衡、线粒体生物生成、新陈代谢、解毒、细胞保护、炎症、免疫、自噬、细胞分化和异生物代谢。在骨骼肌中,Nrf2 信号主要是在活性氧或亲电体扰乱氧化还原平衡时被激活。关于人体骨骼肌 Nrf2 对运动反应的初步研究可追溯到大约十年前,这些研究一致表明,运动诱导的 ROS 产生会刺激 Nrf2 信号。值得注意的是,最近利用 Nrf2 基因敲除小鼠进行的研究发现,与野生型小鼠相比,骨骼肌收缩功能受损,表现为输出力降低和易疲劳性增加。这些缺陷部分源于基础线粒体呼吸能力下降,以及在训练中上调特定线粒体蛋白的能力受损,诱导性肌肉特异性 Nrf2 基因敲除模型证实了这些发现。在人体中,骨骼肌中 Nrf2 的基线表达与最大摄氧量和高强度运动表现相关。本手稿深入探讨了 Nrf2 信号在人体骨骼肌急性运动中的作用机制,强调了 ROS、抗氧化剂和 Keap1/Nrf2 信号在运动表现中的作用。此外,该研究还探讨了 Nrf2 在调节慢性运动适应性方面的作用及其对整体运动表现的影响。此外,还简要讨论了饮食和某些补充剂对基础 Nrf2 表达的影响及其在调节急性和慢性运动反应中的作用。
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来源期刊
Free Radical Biology and Medicine
Free Radical Biology and Medicine 医学-内分泌学与代谢
CiteScore
14.00
自引率
4.10%
发文量
850
审稿时长
22 days
期刊介绍: Free Radical Biology and Medicine is a leading journal in the field of redox biology, which is the study of the role of reactive oxygen species (ROS) and other oxidizing agents in biological systems. The journal serves as a premier forum for publishing innovative and groundbreaking research that explores the redox biology of health and disease, covering a wide range of topics and disciplines. Free Radical Biology and Medicine also commissions Special Issues that highlight recent advances in both basic and clinical research, with a particular emphasis on the mechanisms underlying altered metabolism and redox signaling. These Special Issues aim to provide a focused platform for the latest research in the field, fostering collaboration and knowledge exchange among researchers and clinicians.
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