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Target cell type-dependent differences in Ca2+ channel function underlie distinct release probabilities at hippocampal glutamatergic terminals

机译:靶细胞类型依赖性的Ca2 +通道功能差异是海马谷氨酸能终末释放概率的基础

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摘要

Target cell type-dependent differences in presynaptic release probability (Pr) and short-term plasticity are intriguing features of cortical microcircuits that increase the computational power of neuronal networks. Here we tested the hypothesis that different voltage-gated Ca2+ channel densities in presynaptic active zones (AZs) underlie different Pr Two-photon Ca2+ imaging, triple immunofluorescent labeling and three-dimensional electron microscopic (EM) reconstruction of rat CA3 pyramidal cell axon terminals revealed approximately 1.7 - 1.9-times higher Ca2+inflow per AZ area in high Pr boutons synapsing onto parvalbumin positive interneurons than in low Pr boutons synapsing onto mGluR1alpha positive interneurons. EM replica immunogold labeling, however, demonstrated only 1.15-times larger Cav2.1 and Cav2.2 subunit densities in high Pr AZs. Our results indicate target cell type-specific modulation of voltage-gated Ca2+ channel function or different subunit composition as possible mechanisms underlying the functional differences. In addition, high Pr synapses are also characterized by a higher density of docked vesicles, suggesting that a concerted action of these mechanisms underlies the functional differences. SIGNIFICANCE STATEMENT: Target cell type-dependent variability in presynaptic properties is an intriguing feature of cortical synapses. When a single cortical pyramidal cell establishes a synapse onto a somatostatin-expressing interneuron (IN), the synapse releases glutamate with low probability, whereas the next bouton of the same axon has high release probability when its postsynaptic target is a parvalbumin-expressing IN. Here we used combined molecular, imaging and anatomical approaches to investigate the mechanisms underlying these differences. Our functional experiments implied a approximately 2-fold larger Ca2+ channel density in high release probability boutons whereas freeze-fracture immunolocalization demonstrated only a 15% difference in Ca2+ channel subunit densities. Our results point toward a postsynaptic target cell type-dependent regulation of Ca2+ channel function or different subunit composition as the underlying mechanism.
机译:突触前释放概率(Pr)和短期可塑性的靶细胞类型依赖性差异是皮质微电路的有趣特征,可增加神经元网络的计算能力。在这里,我们测试了以下假设,即不同的Pr 2光子Ca2 +成像,三重免疫荧光标记和大鼠CA3锥体细胞轴突末端的三维电子显微镜(EM)重建揭示了突触前活动区(AZ)中不同的电压门控Ca2 +通道密度。突触到小白蛋白阳性中间神经元的高Pr boutons中的每AZ区域的Ca2 +流入量比突触到mGluR1alpha阳性中间神经元的低Pr boutons高大约1.7- 1.9倍。然而,EM复制品免疫金标记显示高Pr AZ中的Cav2.1和Cav2.2亚基密度仅高1.15倍。我们的结果表明,电压门控Ca2 +通道功能或不同亚基组成的靶细胞类型特异性调节是潜在的功能差异机制。另外,高Pr突触的特征还在于较高的对接囊泡密度,这表明这些机制的协同作用是功能差异的基础。意义声明:突触前特性中靶细胞类型依赖性的变异是皮质突触的有趣特征。当单个皮质锥体细胞在表达促生长素抑制素的中间神经元(IN)上建立突触时,突触以低概率释放谷氨酸,而当其突触后靶点是表达小白蛋白的IN时,同一轴突的下一个纽扣具有高释放概率。在这里,我们使用了分子,成像和解剖学相结合的方法来研究造成这些差异的机制。我们的功能性实验表明,在高释放概率的按键中,Ca2 +通道密度大约增加了2倍,而冷冻断裂免疫定位表明,Ca2 +通道亚单位密度仅相差15%。我们的研究结果指向突触后靶细胞对Ca2 +通道功能或不同亚基组成的调节作为潜在机制。

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