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首页> 外文期刊>Journal of Neurophysiology >Impact of spatiotemporal calcium dynamics within presynaptic active zones on synaptic delay at the frog neuromuscular junction
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Impact of spatiotemporal calcium dynamics within presynaptic active zones on synaptic delay at the frog neuromuscular junction

机译:突触术活性区在突触型活性区内的影响对青蛙神经肌肉交界处的突触延迟

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The spatiotemporal calcium dynamics within presynaptic neurotransmitter release sites (active zones, AZs) at the time of synaptic vesicle fusion is critical for shaping the dynamics of neurotransmitter release. Specifically, the relative arrangement and density of voltage-gated calcium channels (VGCCs) as well as the concentration of calcium buffering proteins can play a large role in the timing, magnitude, and plasticity of release by shaping the AZ calcium profile. However, a high-resolution understanding of the role of AZ structure in spatiotemporal calcium dynamics and how it may contribute to functional heterogeneity at an adult synapse is currently lacking. We demonstrate that synaptic delay varies considerably across, but not within, individual synapses at the frog neuromuscular junction (NMJ). To determine how elements of the AZ could contribute to this variability, we performed a parameter search using a spatially realistic diffusion reaction-based computational model of a frog NMJ AZ (Dittrich M, Pattillo JM, King JD, Cho S, Stiles JR, Meriney SD. Biophys J 104: 2751-2763, 2013; Ma J, Kelly L, Ingram J, Price TJ, Meriney SD, Dittrich M. J Neurophysiol 113: 71-87, 2015). We demonstrate with our model that synaptic delay is sensitive to significant alterations in the spatiotemporal calcium dynamics within an AZ at the time of release caused by manipulations of the density and organization of VGCCs or by the concentration of calcium buffering proteins. Furthermore, our data provide a framework for understanding how AZ organization and structure are important for understanding presynaptic function and plasticity.
机译:突触囊泡融合时突触前神经递质释放位点(有源区,AZ)内的时空钙动力学对于塑造神经递质释放的动态至关重要。具体地,通过塑造AZ钙曲线,可以在释放的时序,幅度和可塑性中发挥大作用,电压门控钙通道(VGCCs)的相对布置和密度可以在释放的时序,幅度和可塑性中起着很大的作用。然而,目前缺乏高分辨率αz结构在时尚钙动力学中的作用以及它在成年突触的功能异质性方面的作用。我们证明突触延迟随着青蛙神经肌肉结(NMJ)的单个突触而异。为了确定AZ的元素如何促进这种可变性,我们使用Frog NMJ AZ的空间现实扩散反应的计算模型进行了参数搜索(Dittrich M,Pattillo JM,King JD,Cho S,Stiles Jr,Meriney SD。Biophys J 104:2751-2763,2013; MA J,Kelly L,Ingram J,Price TJ,梅里尼SD,Dittrich M.J Neurophysiol 113:71-87,2015)。我们展示了我们的模型,即突触延迟对由VGCC的密度和组织的人身或通过钙缓冲蛋白的浓度引起的释放时释放时的释放时的时空钙动力学的显着改变。此外,我们的数据提供了一个理解AZ组织和结构如何对理解突触前功能和可塑性很重要的框架。

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