Jungers Center for Neurosciences Research, Department of Neurology, Oregon Health and Science University, Portland, Oregon.
Department of Anatomy and Neuroscience, University of Melbourne, Melbourne, Victoria, Australia.
Glia. 2019 Nov;67(11):2038-2049. doi: 10.1002/glia.23629. Epub 2019 Apr 30.
Myelin is a critical component of the vertebrate nervous system, both increasing the conduction velocity of myelinated axons and allowing for metabolic coupling between the myelinating cells and axons. An increasing number of studies demonstrate that myelination is not simply a developmentally hardwired program, but rather that new myelinating oligodendrocytes can be generated throughout life. The generation of these oligodendrocytes and the formation of myelin are influenced both during development and adulthood by experience and levels of neuronal activity. This led to the concept of adaptive myelination, where ongoing activity-dependent changes to myelin represent a form of neural plasticity, refining neuronal functioning, and circuitry. Although human neuroimaging experiments support the concept of dynamic changes within specific white matter tracts relevant to individual tasks, animal studies have only just begun to probe the extent to which neuronal activity may alter myelination at the level of individual circuits and axons. Uncovering the role of adaptive myelination requires a detailed understanding of the localized interactions that occur between active axons and myelinating cells. In this review, we focus on recent animal studies that have begun to investigate the interactions between active axons and myelinating cells and review the evidence for-and against-the ability of neuronal activity to alter myelination at an axon-specific level.
髓鞘是脊椎动物神经系统的关键组成部分,既能提高髓鞘轴突的传导速度,又能实现髓鞘形成细胞与轴突之间的代谢偶联。越来越多的研究表明,髓鞘的形成并非是一种预先设定的发育程序,而是在整个生命周期中都能产生新的髓鞘少突胶质细胞。这些少突胶质细胞的产生和髓鞘的形成,无论是在发育过程中还是成年后,都会受到经验和神经元活动水平的影响。这就引出了适应性髓鞘形成的概念,即髓鞘的持续活动依赖性变化代表了一种神经可塑性形式,可以改善神经元的功能和回路。尽管人类神经影像学实验支持了与个体任务相关的特定白质束内存在动态变化的概念,但动物研究才刚刚开始探究神经元活动在多大程度上可以改变个体回路和轴突的髓鞘形成。揭示适应性髓鞘形成的作用需要详细了解活跃轴突和髓鞘形成细胞之间发生的局部相互作用。在这篇综述中,我们重点关注了最近的动物研究,这些研究开始探讨活跃轴突和髓鞘形成细胞之间的相互作用,并综述了神经元活动改变轴突特异性髓鞘形成的能力的证据——支持和反对的证据都有。