Flower Grace, Vorthmann Svenja, Fulton Daniel, Hamilton Nicola B
Wolfson Sensory, Pain and Regeneration Centre, Institute of Psychiatry, Psychology and Neuroscience, Guy's Campus, King's College, London, UK.
Birmingham Centre for Neurogenetics, Department of Inflammation and Ageing, School of Infection, Inflammation and Immunology, College of Medicine and Health, University of Birmingham, Birmingham, UK.
Adv Neurobiol. 2025;43:181-204. doi: 10.1007/978-3-031-87919-7_8.
Myelin plasticity, the capacity for dynamic changes in myelination and myelin structure, challenges the long-held view of myelin as a static entity post-development. Emerging evidence highlights its pivotal role in adapting neural circuits during learning, memory, and recovery from injury or disease. This chapter explores the cellular and molecular mechanisms underlying myelin plasticity, focusing on activity-dependent and experience-driven myelination mediated by oligodendrocytes, which are potentially modified by astrocytes and microglia. This study examines how neuronal activity regulates oligodendrocyte differentiation and myelin remodelling, affecting conduction velocity and circuit synchronization. The implications of myelin plasticity in cognition, ageing, and pathologies such as multiple sclerosis and stroke are discussed alongside experimental models that elucidate its processes. Finally, the importance of sleep in myelin maintenance and plasticity is discussed. Elucidating the mechanisms underlying myelin plasticity and maintenance may uncover new therapeutic opportunities for treating diseases and injuries that disrupt myelin and neuronal activity.
髓鞘可塑性,即髓鞘形成及髓鞘结构发生动态变化的能力,挑战了长期以来认为髓鞘在发育后是静态实体的观点。新出现的证据凸显了其在学习、记忆以及从损伤或疾病中恢复过程中使神经回路适应方面的关键作用。本章探讨了髓鞘可塑性背后的细胞和分子机制,重点关注少突胶质细胞介导的活动依赖性和经验驱动的髓鞘形成,而星形胶质细胞和小胶质细胞可能会对其进行修饰。本研究考察了神经元活动如何调节少突胶质细胞分化和髓鞘重塑,影响传导速度和回路同步。同时还讨论了髓鞘可塑性在认知、衰老以及诸如多发性硬化症和中风等病症中的意义,以及阐明其过程的实验模型。最后,探讨了睡眠在髓鞘维持和可塑性方面的重要性。阐明髓鞘可塑性和维持背后的机制可能会为治疗破坏髓鞘和神经元活动的疾病和损伤发现新的治疗机会。