首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Calcium signaling in a narrow somatic submembrane shell during synaptic activity in cerebellar Purkinje neurons.
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Calcium signaling in a narrow somatic submembrane shell during synaptic activity in cerebellar Purkinje neurons.

机译:小脑浦肯野神经元的突触活动过程中在狭窄的体细胞亚膜壳中的钙信号传导。

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摘要

Temporal and spatial changes in the intracellular Ca2+ concentration ([Ca2+]i) were examined in dendrites and somata of rat cerebellar Purkinje neurons by combining whole-cell patch-clamp recording and fast confocal laser-scanning microscopy. In cells loaded via the patch pipette with the high-affinity Ca2+ indicator Calcium Green-1 (Kd approximately 220 nM), a single synaptic climbing fiber response, a so-called complex spike, resulted in a transient elevation of [Ca2+]i that showed distinct differences among various subcellular compartments. With conventional imaging, the Ca2+ signals were prominent in the dendrites and almost absent in the soma. Confocal recordings from the somatic region, however, revealed steep transient increases in [Ca2+]i that were confined to a submembrane shell of 2- to 3-microns thickness. In the central parts of the soma [Ca2+]i increases were much slower and had smaller amplitudes. The kinetics and amplitudes of the changes in [Ca2+]i were analyzed in more detail by using the fast, low-affinity Ca2+ indicator Calcium Green-5N (Kd approximately 17 microM). We found that brief depolarizing pulses produced [Ca2+]i increases in a narrow somatic submembrane shell that resembled those seen in the dendrites. These results provide direct experimental evidence that the surface-to-volume ratio is a critical determinant of the spatiotemporal pattern of Ca2+ signals evoked by synaptic activity in neurons.
机译:结合全细胞膜片钳记录和快速共聚焦激光扫描显微镜检查大鼠小脑浦肯野神经元的树突和躯体中细胞内Ca2 +浓度([Ca2 +] i)的时空变化。在通过贴片移液器加载了高亲和力的Ca2 +指示剂Calcium Green-1(Kd约为220 nM)的细胞中,单个突触爬升纤维反应(所谓的复杂尖峰)导致[Ca2 +] i的瞬时升高,从而在不同的亚细胞区室之间显示出明显的差异。通过常规成像,Ca2 +信号在树突中突出,而在体细胞中几乎不存在。但是,来自体细胞区域的共聚焦记录显示[Ca2 +] i急剧增加,并仅限于2至3微米厚的膜下壳。在躯体的中部[Ca2 +] i的增加要慢得多,幅度也较小。通过使用快速,低亲和力的Ca2 +指示剂Calcium Green-5N(Kd约为17 microM),可以更详细地分析[Ca2 +] i变化的动力学和幅度。我们发现,短暂的去极化脉冲产生的[Ca2 +] i在狭窄的体细胞亚膜壳中增加,类似于在树突中看到的。这些结果提供了直接的实验证据,表明表面体积比是神经元突触活动诱发的Ca2 +信号时空模式的关键决定因素。

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