首页> 外文期刊>The Journal of Physiology >NO signalling decodes frequency of neuronal activity and generates synapse-specific plasticity in mouse cerebellum.
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NO signalling decodes frequency of neuronal activity and generates synapse-specific plasticity in mouse cerebellum.

机译:NO信号解码神经元活动的频率,并在小鼠小脑中产生突触特异性可塑性。

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Nitric oxide (NO) is an intercellular messenger regulating neuronal functions. To visualize NO signalling in the brain, we generated a novel fluorescent NO indicator, which consists of the heme-binding region (HBR) of soluble guanylyl cyclase and the green fluorescent protein. The indicator (HBR-GFP) was expressed in the Purkinje cells of the mouse cerebellum and we imaged NO signals in acute cerebellar slices upon parallel fibre (PF) activation with a train of burst stimulations (BS, each BS consisting of five pulses at 50 Hz). Our results showed that the intensity of synaptic NO signal decays steeply with the distance from the synaptic input near PF-Purkinje cell synapses and generates synapse-specific long-term potentiation (LTP). Furthermore, the NO release level has a bell-shaped dependence on the frequency of PF activity. At an optimal frequency (1 Hz), but not at a low frequency (0.25 Hz) of a train of 60 BS, NO release as well as LTP was induced. However, both NO release and LTP were significantly reduced at higher frequencies (2-4 Hz) of BS train due to cannabinoid receptor-mediated retrograde inhibition of NO generation at the PF terminals. These results suggest that synaptic NO signalling decodes the frequency of neuronal activity to mediate synaptic plasticity at the PF-Purkinje cell synapse.
机译:一氧化氮(NO)是调节神经元功能的细胞间信使。为了可视化大脑中的NO信号,我们生成了一种新型的荧光NO指示剂,该指示剂由可溶性鸟苷酸环化酶的血红素结合区(HBR)和绿色荧光蛋白组成。指示剂(HBR-GFP)在小鼠小脑的Purkinje细胞中表达,在平行小纤维(PF)激活后,通过一系列刺激(BS,每个BS由五个50个脉冲组成),我们在急性小脑切片中成像了NO信号赫兹)。我们的结果表明,突触NO信号的强度随着距PF-Purkinje细胞突触附近突触输入的距离而急剧衰减,并产生突触特异性长期增强(LTP)。此外,NO释放水平对PF活性的频率呈钟形依赖性。在60 BS的火车的最佳频率(1 Hz)而不是低频(0.25 Hz)时,诱导释放NO和LTP。然而,由于大麻素受体介导的PF末端NO生成的逆向抑制,在BS列车的较高频率(2-4 Hz)下,NO释放和LTP均显着降低。这些结果表明,突触NO信号解码神经元活动的频率,以介导PF-Purkinje细胞突触的突触可塑性。

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