髓鞘
髓鞘
神经科学
神经传导速度
复极
白质
热传导
锥体束
生物物理学
电生理学
动作电位
物理
锥体细胞
离子通道
化学
少突胶质细胞
解剖
皮质神经元
中枢神经系统
Spike(软件开发)
生物
体感系统
物质波
弹性能
核磁共振
外围设备
丘脑
爆裂
作者
Oron Kotler,Yana Khrapunsky,Israel Melamed,Elior Peles,William N. Ross,Ilya A. Fleidervish
标识
DOI:10.1073/pnas.2536534123
摘要
Myelin is a hallmark of vertebrate nervous systems, yet its roles in central axons remain elusive. Using optical and electrical recordings from thin axons of Layer 5 pyramidal neurons in murine cortical gray matter of animals of either sex, and computational modeling, we argue that myelination halves the metabolic cost of spike propagation with little effect on conduction velocity. Modeling indicates that, although greater speed and energy efficiency are theoretically possible, these would compromise repolarization and the function of internodal voltage-gated channels and pumps. We further suggest that, in contrast to peripheral axons, cortical myelin segregates current flow within periaxonal nanodomains. High-frequency currents, key for the rising phase of the action potential, traverse the myelin sheath to facilitate propagation, whereas low-frequency currents leak through paranodal junctions, supporting repolarization and ion homeostasis. These results suggest that cortical myelin adopts a structural trade-off that favors metabolic efficiency and ionic homeostasis over maximal velocity.
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