Liu Yonghong, Yue Wenji, Yu Shoujun, Zhou Tian, Zhang Yapeng, Zhu Ran, Song Bing, Guo Tianruo, Liu Fenglin, Huang Yubin, Wu Tianzhun, Wang Hao
Institute of Biomedical and Health Engineering, Shenzhen Institutes of Advanced Technology (SIAT), Chinese Academy of Sciences (CAS), Shenzhen, China.
Graduate School of Biomedical Engineering, University of New South Wales, Sydney, NSW, Australia.
Front Neurosci. 2022 Sep 26;16:951942. doi: 10.3389/fnins.2022.951942. eCollection 2022.
In the development of oligodendrocytes in the central nervous systems, the inner and outer tongue of the myelin sheath tend to be located within the same quadrant, which was named as Peters quadrant mystery. In this study, we conduct investigations to explore the possible mechanisms underlying the Peters quadrant mystery. A biophysically detailed model of oligodendrocytes was used to simulate the effect of the actional potential-induced electric field across the myelin sheath. Our simulation suggests that the paranodal channel connecting the inner and outer tongue forms a low impedance route, inducing two high-current zones at the area around the inner and outer tongue. When the inner tongue and outer tongue are located within the same quadrant, the interaction of these two high-current-zones will induce a maximum amplitude and a polarity reverse of the voltage upon the inner tongue, resulting in the same quadrant phenomenon. This model indicates that the growth of myelin follows a simple principle: an external negative or positive E-field can promote or inhibit the growth of the inner tongue, respectively.
在中枢神经系统少突胶质细胞的发育过程中,髓鞘的内舌和外舌往往位于同一象限,这一现象被称为彼得斯象限之谜。在本研究中,我们进行了调查,以探索彼得斯象限之谜背后的可能机制。使用一个具有生物物理细节的少突胶质细胞模型来模拟动作电位诱导的电场穿过髓鞘的效应。我们的模拟表明,连接内舌和外舌的结旁通道形成了一条低阻抗路径,在内舌和外舌周围区域诱导出两个高电流区。当内舌和外舌位于同一象限时,这两个高电流区的相互作用将在内舌上诱导出最大振幅和电压极性反转,从而导致同一象限现象。该模型表明,髓鞘的生长遵循一个简单的原则:外部负电场或正电场可分别促进或抑制内舌的生长。