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首页> 外文期刊>Frontiers in Computational Neuroscience >Spike timing regulation on the millisecond scale by distributed synaptic plasticity at the cerebellum input stage: a simulation study
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Spike timing regulation on the millisecond scale by distributed synaptic plasticity at the cerebellum input stage: a simulation study

机译:小脑输入阶段通过分布的突触可塑性以毫秒为单位的穗定时调节:模拟研究

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The way long-term synaptic plasticity regulates neuronal spike patterns is not completely understood. This issue is especially relevant for the cerebellum, which is endowed with several forms of long-term synaptic plasticity and has been predicted to operate as a timing and a learning machine. Here we have used a computational model to simulate the impact of multiple distributed synaptic weights in the cerebellar granular-layer network. In response to mossy fiber (MF) bursts, synaptic weights at multiple connections played a crucial role to regulate spike number and positioning in granule cells. The weight at MF to granule cell synapses regulated the delay of the first spike and the weight at MF and parallel fiber to Golgi cell synapses regulated the duration of the time-window during which the first-spike could be emitted. Moreover, the weights of synapses controlling Golgi cell activation regulated the intensity of granule cell inhibition and therefore the number of spikes that could be emitted. First-spike timing was regulated with millisecond precision and the number of spikes ranged from zero to three. Interestingly, different combinations of synaptic weights optimized either first-spike timing precision or spike number, efficiently controlling transmission and filtering properties. These results predict that distributed synaptic plasticity regulates the emission of quasi-digital spike patterns on the millisecond time-scale and allows the cerebellar granular layer to flexibly control burst transmission along the MF pathway.
机译:长期突触可塑性调节神经元尖峰模式的方式尚不完全清楚。这个问题对于小脑尤为重要,小脑具有多种形式的长期突触可塑性,并被预测可以作为计时和学习机器。在这里,我们使用了一个计算模型来模拟小脑颗粒层网络中多个分布式突触权重的影响。为了响应苔藓纤维(MF)爆发,多个连接处的突触权重在调节穗状细胞数量和在颗粒细胞中的位置起着至关重要的作用。 MF处颗粒细胞突触的重量调节了第一个尖峰的延迟,MF处和平行纤维中Golgi细胞突触的重量调节了第一个尖峰可能发出的时间窗口的持续时间。而且,控制高尔基体细胞活化的突触的权重调节了颗粒细胞抑制的强度,因此调节了可以发射的尖峰的数量。第一次尖峰定时以毫秒精度进行调节,并且尖峰的数量从零到三个不等。有趣的是,突触权重的不同组合优化了第一峰值定时精度或峰值数量,从而有效地控制了传输和滤波特​​性。这些结果表明,分布的突触可塑性可在毫秒级的时间尺度上调节准数字尖峰模式的发射,并允许小脑颗粒层灵活地控制沿MF路径的猝发传输。

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