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髓磷脂缺陷型颤抖小鼠中枢神经系统轴突中微管稳定性和密度的变化。

Changes in microtubule stability and density in myelin-deficient shiverer mouse CNS axons.

作者信息

Kirkpatrick L L, Witt A S, Payne H R, Shine H D, Brady S T

机构信息

Department of Cell Biology, University of Texas Southwestern Medical Center, Dallas, Texas 75235, USA.

出版信息

J Neurosci. 2001 Apr 1;21(7):2288-97. doi: 10.1523/JNEUROSCI.21-07-02288.2001.

Abstract

Altered axon-Schwann cell interactions in PNS myelin-deficient Trembler mice result in changed axonal transport rates, neurofilament and microtubule-associated protein phosphorylation, neurofilament density, and microtubule stability. To determine whether PNS and CNS myelination have equivalent effects on axons, neurofilaments, and microtubules in CNS, myelin-deficient shiverer axons were examined. The genetic defect in shiverer is a deletion in the myelin basic protein (MBP) gene, an essential component of CNS myelin. As a result, shiverer mice have little or no compact CNS myelin. Slow axonal transport rates in shiverer CNS axons were significantly increased, in contrast to the slowing in demyelinated PNS nerves. Even more striking were substantial changes in the composition and properties of microtubules in shiverer CNS axons. The density of axonal microtubules is increased, reflecting increased expression of tubulin in shiverer, and the stability of microtubules is drastically reduced in shiverer axons. Shiverer transgenic mice with two copies of a wild-type myelin basic protein transgene have an intermediate level of compact myelin, making it possible to determine whether the actual level of compact myelin is an important regulator of axonal microtubules. Both increased microtubule density and reduced microtubule stability were still observed in transgenic mouse nerves, indicating that signals beyond synaptogenesis and the mere presence of compact myelin are required for normal regulation of the axonal microtubule cytoskeleton.

摘要

周围神经系统(PNS)髓鞘缺乏的颤抖小鼠中轴突与施万细胞的相互作用改变,导致轴突运输速率、神经丝和微管相关蛋白磷酸化、神经丝密度以及微管稳定性发生变化。为了确定PNS和中枢神经系统(CNS)髓鞘形成对CNS中的轴突、神经丝和微管是否有同等影响,对髓鞘缺乏的颤抖小鼠轴突进行了检查。颤抖小鼠的基因缺陷是髓鞘碱性蛋白(MBP)基因缺失,MBP是CNS髓鞘的重要组成部分。因此,颤抖小鼠几乎没有致密的CNS髓鞘。与脱髓鞘的PNS神经中轴突运输速率减慢相反,颤抖小鼠CNS轴突中的慢速轴突运输速率显著增加。更引人注目的是,颤抖小鼠CNS轴突中微管的组成和特性发生了实质性变化。轴突微管密度增加,反映出颤抖小鼠中微管蛋白表达增加,并且颤抖小鼠轴突中微管的稳定性大幅降低。带有两个野生型髓鞘碱性蛋白转基因拷贝的颤抖转基因小鼠具有中等水平的致密髓鞘,这使得确定致密髓鞘的实际水平是否是轴突微管的重要调节因子成为可能。在转基因小鼠神经中仍然观察到微管密度增加和微管稳定性降低,这表明轴突微管细胞骨架的正常调节需要突触形成之外的信号以及致密髓鞘的单纯存在。

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