1)北京师范大学体育与运动学院,北京 100875;2)北京师范大学化学学院,北京 100875;3)河北师范大学体育学院,石家庄 050024
国家自然科学基金(22134002)资助项目。
1)College of Sports and PE, Beijing Normal University, Beijing 100875, China;2)College of Chemistry, Beijing Normal University, Beijing 100875, China;3)College of Physical Education, Hebei Normal University, Shijiazhuang 050024, China
This work was supported by a grant from The National Natural Science Foundation of China (22134002).
脑是人体最复杂的器官之一,其结构和功能的解析被视为人类自我认知与自然探索的“终极疆域”。在“中国脑计划”战略布局的推动下,聚焦“理解脑、模拟脑和保护脑”,我国科学家围绕脑认知原理解析、脑疾病机制与干预、类脑计算及脑机智能技术的应用等领域展开了系统研究,并取得了许多突破性进展。运动不仅是日常生活中不可或缺的部分,还是保护脑健康、防治神经退行性疾病的重要非药物疗法,已形成一个新兴的研究方向——运动神经科学。运动神经科学基础研究主要围绕运动控制神经环路动态编码机制进行解析,并形成了以传统神经科学方法结合新型运动行为解码技术为基础的工具群,为运动神经科学研究提供了创新技术平台。运动神经科学应用研究则围绕运动介导神经保护分子调控网络破译展开,从运动促进神经发生和再生、增强突触可塑性、调节神经元功能活动,以及重塑神经元外环境的小分子稳态,改善认知功能并降低神经类疾病发生等角度,为运动康复策略的临床推广与应用提供理论基础。本文系统总结了运动神经科学研究中的创新技术发展,并综述运动保护脑的神经可塑性机制,结合运动在主要神经退行性疾病防治中的作用进行展望,为未来运动保护脑的理论创新与临床转化提供新思路。
Neuroscience is a significant frontier discipline within the natural sciences and has become an important interdisciplinary frontier scientific field. Brain is one of the most complex organs in the human body, and its structural and functional analysis is considered the “ultimate frontier” of human self-awareness and exploration of nature. Driven by the strategic layout of “China Brain Project”, Chinese scientists have conducted systematic research focusing on “understanding the brain, simulating the brain, and protecting the brain”. They have made breakthrough progress in areas such as the principles of brain cognition, mechanisms and interventions for brain diseases, brain-like computation, and applications of brain-machine intelligence technology, aiming to enhance brain health through biomedical technology and improve the quality of human life. Due to limited understanding and comprehension of neuroscience, there are still many important unresolved issues in the field of neuroscience, resulting in a lack of effective measures to prevent and protect brain health. Therefore, in addition to actively developing new generation drugs, exploring non pharmacological treatment strategies with better health benefits and higher safety is particularly important. Epidemiological data shows that, exercise is not only an indispensable part of daily life but also an important non-pharmacological approach for protecting brain health and preventing neurodegenerative diseases, forming an emerging research field known as motor neuroscience. Basic research in motor neuroscience primarily focuses on analyzing the dynamic coding mechanisms of neural circuits involved in motor control, breakthroughs in motor neuroscience research depend on the construction of dynamic monitoring systems across temporal and spatial scales. Therefore, high spatiotemporal resolution detection of movement processes and movement-induced changes in brain structure and neural activity signals is an important technical foundation for conducting motor neuroscience research and has developed a set of tools based on traditional neuroscience methods combined with novel motor behavior decoding technologies, providing an innovative technical platform for motor neuroscience research. The protective effect of exercise in neurodegenerative diseases provides broad application prospects for its clinical translation. Applied research in motor neuroscience centers on deciphering the regulatory networks of neuroprotective molecules mediated by exercise. From the perspectives of exercise promoting neurogenesis and regeneration, enhancing synaptic plasticity, modulating neuronal functional activity, and remodeling the molecular homeostasis of the neuronal microenvironment, it aims to improve cognitive function and reduce the incidence of Parkinson’s disease and Alzheimer’s disease. This has also advanced research into the molecular regulatory networks mediating exercise-induced neuroprotection and facilitated the clinical application and promotion of exercise rehabilitation strategies. Multidimensional analysis of exercise-regulated neural plasticity is the theoretical basis for elucidating the brain-protective mechanisms mediated by exercise and developing intervention strategies for neurological diseases. Thus,real-time analysis of different neural signals during active exercise is needed to study the health effects of exercise throughout the entire life cycle and enhance lifelong sports awareness. Therefore, this article will systematically summarize the innovative technological developments in motor neuroscience research, review the mechanisms of neural plasticity that exercise utilizes to protect the brain, and explore the role of exercise in the prevention and treatment of major neurodegenerative diseases. This aims to provide new ideas for future theoretical innovations and clinical applications in the field of exercise-induced brain protection.
侯莉娟,毛兰群,陈巍,李科,赵旭东,王寅昊,杨子铮,魏天赫.综述与专论:运动保护脑的神经可塑性机制[J].生物化学与生物物理进展,2025,52(6):1435-1452
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