神经元Nogo-A的突触不稳定。

Brain cell biology Pub Date : 2006-06-01 Epub Date: 2007-10-04 DOI:10.1007/s11068-007-9014-3
Elisabeth M Aloy, Oliver Weinmann, Caroline Pot, Hansjörg Kasper, Dana A Dodd, Thomas Rülicke, Ferdinando Rossi, Martin E Schwab
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引用次数: 71

摘要

神经网络的形成和维持是基于突触连接的可塑性和稳定性之间的平衡。已经发现了一些调节兴奋性突触维持的分子,但对突触稳定与抑制性突触解体的分子机制尚不清楚。在这里,我们证明Nogo-A,众所周知存在于髓磷脂中并抑制成人中枢神经系统的生长,在浦肯野细胞-小脑深部核(DCN)抑制突触形成时存在于小脑浦肯野细胞的抑制性突触前末端,然后在突触成熟过程中下调。我们研究了神经元Nogo-A在突触成熟中的作用,通过产生几个过表达Nogo-A的小鼠系,从出生后的年龄开始,贯穿整个成年生活,特别是在小脑浦肯野细胞及其终末。Nogo-A的过表达诱导了浦肯野细胞末端的逐渐解体、收缩和丧失。这导致转基因小鼠在运动学习和协调方面的缺陷。在突触解体之前,神经元Nogo-A的过度表达导致突触后神经元中突触支架蛋白spectrin、spectrin- e和β -catenin的下调。我们的数据表明,神经元Nogo-A可能通过调节突触锚定分子的表达在抑制性突触的维持中发挥作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synaptic destabilization by neuronal Nogo-A.

Formation and maintenance of a neuronal network is based on a balance between plasticity and stability of synaptic connections. Several molecules have been found to regulate the maintenance of excitatory synapses but nothing is known about the molecular mechanisms involved in synaptic stabilization versus disassembly at inhibitory synapses. Here, we demonstrate that Nogo-A, which is well known to be present in myelin and inhibit growth in the adult CNS, is present in inhibitory presynaptic terminals in cerebellar Purkinje cells at the time of Purkinje cell-Deep Cerebellar Nuclei (DCN) inhibitory synapse formation and is then downregulated during synapse maturation. We addressed the role of neuronal Nogo-A in synapse maturation by generating several mouse lines overexpressing Nogo-A, starting at postnatal ages and throughout adult life, specifically in cerebellar Purkinje cells and their terminals. The overexpression of Nogo-A induced a progressive disassembly, retraction and loss of the inhibitory Purkinje cell terminals. This led to deficits in motor learning and coordination in the transgenic mice. Prior to synapse disassembly, the overexpression of neuronal Nogo-A led to the downregulation of the synaptic scaffold proteins spectrin, spectrin-E and beta-catenin in the postsynaptic neurons. Our data suggest that neuronal Nogo-A might play a role in the maintenance of inhibitory synapses by modulating the expression of synaptic anchoring molecules.

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