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Inhibition of dendritic Ca2+ spikes by GABAB receptors in cortical pyramidal neurons is mediated by a direct Gi/o- -subunit interaction with Cav1 channels

机译:皮质锥体神经元中的GABA B受体抑制树突状Ca2 +尖峰是通过与Cav1通道的直接Gi / o--亚基相互作用来介导的

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摘要

Voltage-dependent calcium channels (VDCCs) serve a wide range of physiological functions and their activity is modulated by different neurotransmitter systems. GABAergic inhibition of VDCCs in neurons has an important impact in controlling transmitter release, neuronal plasticity, gene expression and neuronal excitability. We investigated the molecular signalling mechanisms by which GABAB receptors inhibit calcium-mediated electrogenesis (Ca2+ spikes) in the distal apical dendrite of cortical layer 5 pyramidal neurons. Ca2+ spikes are the basis of coincidence detection and signal amplification of distal tuft synaptic inputs characteristic for the computational function of cortical pyramidal neurons. By combining dendritic whole-cell recordings with two-photon fluorescence Ca2+ imaging we found that all subtypes of VDCCs were present in the Ca2+ spike initiation zone, but that they contribute differently to the initiation and sustaining of dendritic Ca2+ spikes. Particularly, Cav1 VDCCs are the most abundant VDCC present in this dendritic compartment and they generated the sustained plateau potential characteristic for the Ca2+ spike. Activation of GABAB receptors specifically inhibited Cav1 channels. This inhibition of L-type Ca2+ currents was transiently relieved by strong depolarization but did not depend on protein kinase activity. Therefore, our findings suggest a novel membrane-delimited interaction of the Gi/o-βγ-subunit with Cav1 channels identifying this mechanism as the general pathway of GABAB receptor-mediated inhibition of VDCCs. Furthermore, the characterization of the contribution of the different VDCCs to the generation of the Ca2+ spike provides new insights into the molecular mechanism of dendritic computation.
机译:电压依赖性钙通道(VDCC)具有广泛的生理功能,其活性由不同的神经递质系统调节。 GABA能抑制神经元中的VDCC对控制递质释放,神经元可塑性,基因表达和神经元兴奋性具有重要影响。我们调查了分子信号传导机制,通过该机制,GABAB受体抑制了皮质层5锥体神经元的远端根尖树突中的钙介导的电生成(Ca2 +尖峰)。 Ca2 +尖峰是皮层锥体神经元的计算功能特有的远端簇状突触输入的重合检测和信号放大的基础。通过将树突状全细胞记录与双光子荧光Ca2 +成像相结合,我们发现VDCC的所有亚型都存在于Ca2 +尖峰起始区中,但它们对树突状Ca2 +尖峰的起始和维持贡献不同。特别地,Cav1 VDCC是该树突状区室中存在的最丰富的VDCC,它们为Ca2 +尖峰产生了持续的平台电位特征。 GABA B受体的激活特异性抑制Cav1通道。 L型Ca2 +电流的这种抑制作用通过强去极化作用暂时解除,但不依赖于蛋白激酶活性。因此,我们的发现表明,Gi /o-βγ亚基与Cav1通道的新型膜定界相互作用将这种机制确定为GABAB受体介导的VDCCs抑制的一般途径。此外,表征不同VDCC对Ca2 +尖峰的产生的贡献,为树突计算的分子机理提供了新的见识。

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