乳酸在运动大脑中的双重作用:补充能量和发出疲劳信号。

Q3 Neuroscience
Takashi Matsui, Hideaki Soya
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引用次数: 0

摘要

历史上被认为是一种阻碍肌肉收缩的“疲劳物质”,乳酸盐在科学认知上经历了范式转变。目前,它被认为是有氧ATP合成不可或缺的底物,是糖酵解途径的关键中间体。在大脑中,星形胶质细胞中糖原产生的乳酸有助于增强运动耐力,并通过星形胶质细胞-神经元乳酸穿梭增强记忆形成。这种胶质-神经元相互作用机制强调了乳酸的广泛影响超出了单纯的肌肉生理学。当代研究的重点是阐明一个新的假设:乳酸作为G蛋白偶联受体(GPR) 81的配体,在运动能力中协调“疲劳信号”。这种假设的神经抑制功能强调了乳酸对长时间运动的生理反应的全面影响。乳酸的这种进化观点不仅强调了它在代谢过程中的核心作用,而且为深入探索全身管理和适应体力衰竭和中枢疲劳的复杂机制铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Dual Role of Lactate in the Exercising Brain: Fueling Energy and Signaling Fatigue.

Historically regarded as a "fatigue substance" that impedes muscle contraction, lactate has undergone a paradigm shift in its scientific perception. Currently, it is acknowledged as an indispensable substrate for aerobic ATP synthesis, functioning as a pivotal intermediate in the glycolysis pathway. Within the brain context, lactate derived from glycogen in astrocytes is instrumental in augmenting exercise endurance and enhancing memory formation via the astrocyte-neuron lactate shuttle. This glia-neuron interaction mechanism underscores the expansive influence of lactate beyond mere muscular physiology. Contemporary investigations have pivoted toward elucidating a novel hypothesis: the role of lactate as a ligand for the G protein-coupled receptor (GPR) 81, posited to orchestrate a "fatigue signal" amid exercise capabilities. This hypothesized function in neural inhibition underscores the comprehensive impact of lactate on physiological responses to prolonged exercise. This evolving perspective of lactate not only accentuates its central role in metabolic processes but also paves the way for advanced exploration into the whole-body's sophisticated mechanisms for managing and adapting to physical exhaustion and central fatigue.

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来源期刊
Advances in neurobiology
Advances in neurobiology Neuroscience-Neurology
CiteScore
2.80
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