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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Nitric Oxide Signaling Strengthens Inhibitory Synapses of Cerebellar Molecular Layer Interneurons through a GABARAP-Dependent Mechanism
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Nitric Oxide Signaling Strengthens Inhibitory Synapses of Cerebellar Molecular Layer Interneurons through a GABARAP-Dependent Mechanism

机译:一氧化氮信号传导通过依赖于加巴普依赖性机制增强小脑分子层中间核的抑制突触

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摘要

Nitric oxide (NO) is an important signaling molecule that fulfills diverse functional roles as a neurotransmitter or diffusible second messenger in the developing and adult CNS. Although the impact of NO on different behaviors such as movement, sleep, learning, and memory has been well documented, the identity of its molecular and cellular targets is still an area of ongoing investigation. Here, we identify a novel role for NO in strengthening inhibitory GABA(A) receptor-mediated transmission in molecular layer interneurons of the mouse cerebellum. NO levels are elevated by the activity of neuronal NO synthase (nNOS) following Ca2+ entry through extrasynaptic NMDA-type ionotropic glutamate receptors (NMDARs). NO activates protein kinase G with the subsequent production of cGMP, which prompts the stimulation of NADPH oxidase and protein kinase C (PKC). The activation of PKC promotes the selective strengthening of alpha 3-containing GABA(A) Rs synapses through a GABA receptor-associated protein-dependent mechanism. Given the widespread but cell type-specific expression of the NMDAR/nNOS complex in the mammalian brain, our data suggest that NMDARs may uniquely strengthen inhibitory GABAergic transmission in these cells through a novel NO-mediated pathway.
机译:一氧化氮(NO)是一种重要的信号分子,其符合开发和成人CNS中的神经递质或扩散的第二信使。虽然NO对不同行为的影响,如运动,睡眠,学习和记忆,但其分子和细胞目标的身份仍然是正在进行的调查的领域。在此,我们鉴定了NO加强小鼠分子层中的抑制性GABA(A)受体介导的透射率NO的新作用。通过促进NMDA型离子淋谷氨酸受体(NMDARS),通过CA2 +进入后神经元没有合酶(NNOS)的活性没有水平升高。没有用随后的CGMP产生蛋白激酶G,其促使NADPH氧化酶和蛋白激酶C(PKC)的刺激。 PKC的活化促进通过GABA受体相关蛋白依赖性机制促进含有α3的α3(a)rs突变的选择性强化。鉴于哺乳动物脑中的NMDAR / NNOS复合物的细胞类型特异性表达,我们的数据表明,NMDAR可以通过新的无介导的途径在这些细胞中唯一地加强抑制性胃肠杆菌。

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