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Bassoon Speeds Vesicle Reloading at a Central Excitatory Synapse

机译:巴松管加快中央兴奋性突触的囊泡重装

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摘要

Sustained rate-coded signals encode many types of sensory modalities. Some sensory synapses possess specialized ribbon structures, which tether vesicles, to enable high-frequency signaling. However, central synapses lack these structures, yet some can maintain signaling over a wide bandwidth. To analyze the underlying molecular mechanisms, we investigated the function of the active zone core component Bassoon in cerebellar mossy fiber to granule cell synapses. We show that short-term synaptic depression is enhanced in Bassoon knockout mice during sustained high-frequency trains but basal synaptic transmission is unaffected. Fluctuation and quantal analysis as well as quantification with constrained short-term plasticity models revealed that the vesicle reloading rate was halved in the absence of Bassoon. Thus, our data show that the cytomatrix protein Bassoon speeds the reloading of vesicles to release sites at a central excitatory synapse.
机译:持续的速率编码信号编码多种类型的感觉模态。一些感觉突触具有专门的带状结构,该结构会束缚囊泡,以实现高频信号传导。然而,中央突触缺乏这些结构,但是一些突触可以在较宽的带宽上保持信令。为了分析潜在的分子机制,我们研究了小脑苔藓纤维中活性区核心成分巴松管对颗粒细胞突触的功能。我们显示,在持续的高频火车中,巴松管基因敲除小鼠中短期突触抑制能力增强,但基础突触传递不受影响。涨落和定量分析以及受约束的短期可塑性模型的定量分析表明,在没有巴松管的情况下,囊泡的再加载速率减半。因此,我们的数据表明,细胞基质蛋白Bassoon加快了囊泡的重载,以释放中央兴奋性突触的位点。

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