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首页> 外文期刊>Nature Communications >Two-component latency distributions indicate two-step vesicular release at simple glutamatergic synapses
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Two-component latency distributions indicate two-step vesicular release at simple glutamatergic synapses

机译:两组分潜伏期分布表明在简单的谷氨酸能突触中两步水泡释放

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It is often assumed that only stably docked synaptic vesicles can fuse following presynaptic action potential stimulation. However, during action potential trains docking sites are increasingly depleted, raising the question of the source of synaptic vesicles during sustained release. We have recently developed methods to reliably measure release latencies during high frequency trains at single synapses between parallel fibers and molecular layer interneurons. The latency distribution exhibits a single fast component at train onset but contains both a fast and a slow component later in the train. The contribution of the slow component increases with stimulation frequency and with release probability and decreases when blocking the docking step with latrunculin. These results suggest that the slow component reflects sequential docking and release in immediate succession. The transition from fast to slow component, as well as a later transition to asynchronous release, appear as successive adaptations of the synapse to maintain fidelity at the expense of time accuracy.
机译:通常认为,在突触前动作电位刺激后,只有稳定停靠的突触小泡才能融合。然而,在行动期间,潜在的火车停靠点越来越多,这引发了持续释放过程中突触囊泡来源的问题。我们最近开发了一种方法,可以在平行纤维和分子层中间神经元之间的单个突触处的高频列车中可靠地测量释放延迟。潜伏期分布在列车开始时表现出单个快速分量,但在列车后期包含快速和慢速分量。慢速成分的贡献随着刺激频率和释放概率的增加而增加,而在用拉特朗库林阻断对接步骤时减少。这些结果表明,缓慢的成分反映了顺序对接和立即连续释放。从快速组件到慢速组件的过渡,以及后来到异步释放的过渡,都表现为突触的连续适应,以保真度为代价,但以时间准确性为代价。

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