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有髓轴突中神经丝减慢的一种可能机制:磷酸化诱导的神经丝动力学变化。

A possible mechanism for neurofilament slowing down in myelinated axon: Phosphorylation-induced variation of NF kinetics.

作者信息

Jia Zelin, Li Yinyun

机构信息

School of Systems Science, Beijing Normal University, Beijing, China.

出版信息

PLoS One. 2021 Mar 12;16(3):e0247656. doi: 10.1371/journal.pone.0247656. eCollection 2021.

Abstract

Neurofilaments(NFs) are the most abundant intermediate filaments that make up the inner volume of axon, with possible phosphorylation on their side arms, and their slow axonal transport by molecular motors along microtubule tracks in a "stop-and-go" manner with rapid, intermittent and bidirectional motion. The kinetics of NFs and morphology of axon are dramatically different between myelinate internode and unmyelinated node of Ranvier. The NFs in the node transport as 7.6 times faster as in the internode, and the distribution of NFs population in the internode is 7.6 folds as much as in the node of Ranvier. We hypothesize that the phosphorylation of NFs could reduce the on-track rate and slow down their transport velocity in the internode. By modifying the '6-state' model with (a) an extra phosphorylation kinetics to each six state and (b) construction a new '8-state' model in which NFs at off-track can be phosphorylated and have smaller on-track rate, our model and simulation demonstrate that the phosphorylation-induced decrease of on-track rate could slow down the NFs average velocity and increase the axonal caliber. The degree of phosphorylation may indicate the extent of velocity reduction. The Continuity equation used in our paper predicts that the ratio of NFs population is inverse proportional to the ratios of average velocity of NFs between node of Ranvier and internode. We speculate that the myelination of axon could increase the level of phosphorylation of NF side arms, and decrease the possibility of NFs to get on-track of microtubules, therefore slow down their transport velocity. In summary, our work provides a potential mechanism for understanding the phosphorylation kinetics of NFs in regulating their transport and morphology of axon in myelinated axons, and the different kinetics of NFs between node and internode.

摘要

神经丝(NFs)是构成轴突内部容积的最丰富的中间丝,其侧臂可能发生磷酸化,并且它们通过分子马达沿着微管轨道以“走走停停”的方式进行慢速轴突运输,具有快速、间歇性和双向运动。在有髓鞘的节间和无髓鞘的郎飞结之间,神经丝的动力学和轴突的形态有显著差异。郎飞结中的神经丝运输速度比节间快7.6倍,节间神经丝群体的分布是郎飞结中的7.6倍。我们假设神经丝的磷酸化会降低其在轨道上的速率并减慢它们在节间的运输速度。通过对“6态”模型进行修改,(a)给每个六态增加额外的磷酸化动力学,以及(b)构建一个新的“8态”模型,其中处于脱轨状态的神经丝可以被磷酸化并且具有较小的在轨道上的速率,我们的模型和模拟表明,磷酸化诱导的在轨道上速率的降低会减慢神经丝的平均速度并增加轴突管径。磷酸化程度可能表明速度降低的程度。我们论文中使用的连续性方程预测,神经丝群体的比例与郎飞结和节间之间神经丝平均速度的比例成反比。我们推测轴突的髓鞘化会增加神经丝侧臂的磷酸化水平,并降低神经丝进入微管轨道的可能性,从而减慢它们的运输速度。总之,我们的工作为理解神经丝的磷酸化动力学在调节有髓鞘轴突中神经丝的运输和轴突形态以及节间和结之间神经丝的不同动力学提供了一种潜在机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d49/7954336/fe522e585df1/pone.0247656.g001.jpg

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