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首页> 外文期刊>Cerebral cortex >Oligodendrocyte- and Neuron-Specific Nogo-A Restrict Dendritic Branching and Spine Density in the Adult Mouse Motor Cortex
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Oligodendrocyte- and Neuron-Specific Nogo-A Restrict Dendritic Branching and Spine Density in the Adult Mouse Motor Cortex

机译:oligodendrocyte-和神经元特异性的Nogo-a限制成年小鼠电机皮层中的树突状分支和脊柱密度

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Nogo-A has been well described as a myelin-associated inhibitor of neurite outgrowth and functional neuroregeneration after central nervous system (CNS) injury. Recently, a new role of Nogo-A has been identified as a negative regulator of synaptic plasticity in the uninjured adult CNS. Nogo-A is present in neurons and oligodendrocytes. However, it is yet unclear which of these two pools regulate synaptic plasticity. To address this question we used newly generated mouse lines in which Nogo-A is specifically knocked out in (1) oligodendrocytes (oligoNogo-A KO) or (2) neurons (neuroNogo-A KO). We show that both oligodendrocyte-and neuron-specific Nogo-A KO mice have enhanced dendritic branching and spine densities in layer 2/3 cortical pyramidal neurons. These effects are compartmentalized: neuronal Nogo-A affects proximal dendrites whereas oligodendrocytic Nogo-A affects distal regions. Finally, we used two-photon laser scanning microscopy to measure the spine turnover rate of adult mouse motor cortex layer 5 cells and find that both Nogo-A KO mouse lines show enhanced spine remodeling after 4 days. Our results suggest relevant control functions of glial as well as neuronal Nogo-A for synaptic plasticity and open new possibilities for more selective and targeted plasticity enhancing strategies.
机译:Nogo-A已被精良地描述为中枢神经系统(CNS)损伤后的神经突患者的神经突相关抑制剂和功能性神经衰减。最近,Nogo-A的新作用已被鉴定为未受吸收成人CNS中突触可塑性的负调节因子。 Nogo-A存在于神经元和少突胶质细胞中。然而,目前尚不清楚这两个池中的哪一个调节突触可塑性。为了解决这个问题,我们使用了新生成的鼠标线,其中Nogo-a在(1)oligodendrocytes(oligonogo-a Ko)或(2)神经元(神经元-a-ako)中特别敲出。我们表明,寡突胶和神经元特异性的Nogo-A KO小鼠具有增强的树枝状分支和层2/3皮质金字塔神经元的脊柱密度。这些效果是划分的:神经元Nogo-A影响近端树枝状叶片,而少偶突罗基葡萄球菌-A影响远端区域。最后,我们使用了双光子激光扫描显微镜来测量成人小鼠电机皮层5层细胞的脊柱周转率,并发现诺诺-KO小鼠系均显示出4天后的增强的脊柱重塑。我们的研究结果表明了胶质和神经元Nogo-A的相关控制功能,用于突触可塑性,开辟更多选择性和有针对性的可塑性增强策略的新可能性。

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