首页> 美国卫生研究院文献>The Journal of Neuroscience >Opposite Roles in Short-Term Plasticity for N-Type and P/Q-Type Voltage-Dependent Calcium Channels in GABAergic Neuronal Connections in the Rat Cerebral Cortex
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Opposite Roles in Short-Term Plasticity for N-Type and P/Q-Type Voltage-Dependent Calcium Channels in GABAergic Neuronal Connections in the Rat Cerebral Cortex

机译:在大鼠大脑皮质的GABA能神经元连接中的N型和P / Q型电压依赖性钙通道的短期可塑性中的相反作用。

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摘要

Neurotransmitter release is triggered by Ca2+ influx through voltage-dependent Ca2+ channels (VDCCs). Distinct expression patterns of VDCC subtypes localized on the synaptic terminal affect intracellular Ca2+ dynamics induced by action potential-triggered Ca2+ influx. However, it has been unknown whether the expression pattern of VDCC subtypes depends on each axon terminal or neuronal subtype. Furthermore, little information is available on how these VDCC subtypes regulate the release probability of neurotransmitters. To address these questions, we performed multiple whole-cell patch-clamp recordings from GABAergic neurons in the insular cortex of either the male or the female rat. The paired-pulse ratio (PPR; 50 ms interstimulus interval) varied widely among inhibitory connections between GABAergic neurons. The PPR of unitary IPSCs was enhanced by ω-conotoxin GVIA (CgTx; 3 μm), an N-type VDCC blocker, whereas blockade of P/Q-type VDCCs by ω-agatoxin IVA (AgTx, 200 nm) decreased the PPR. In the presence of CgTx, application of 4 mm [Ca2+]o or of roscovitine, a P/Q-type activator, increased the PPR. These results suggest that the recruitment of P/Q-type VDCCs increases the PPR, whereas N-type VDCCs suppress the PPR. Furthermore, we found that charybdotoxin or apamin, blockers of Ca2+-dependent K+ channels, with AgTx increased the PPR, suggesting that Ca2+-dependent K+ channels are coupled to N-type VDCCs and suppress the PPR in GABAergic neuronal terminals. Variance–mean analysis with changing [Ca2+]o showed a negative correlation between the PPR and release probability in GABAergic synapses. These results suggest that GABAergic neurons differentially express N-type and/or P/Q-type VDCCs and that these VDCCs regulate the GABA release probability in distinct manners.>SIGNIFICANCE STATEMENT GABAergic neuronal axons target multiple neurons and release GABA triggered by Ca2+ influx via voltage-dependent Ca2+ channels (VDCCs), including N-type and P/Q-type channels. Little is known about VDCC expression patterns in GABAergic synaptic terminals and their role in short-term plasticity. We focused on inhibitory synaptic connections between GABAergic neurons in the cerebral cortex using multiple whole-cell patch-clamp recordings and found different expression patterns of VDCCs in the synaptic terminals branched from a single presynaptic neuron. Furthermore, we observed facilitative and depressive short-term plasticity of IPSCs mediated by P/Q-type and N-type VDCCs, respectively. These results suggest that VDCC expression patterns regulate distinctive types of synaptic transmission in each GABAergic axon terminal even though they are branched from a common presynaptic neuron.
机译:Ca 2 + 通过依赖电压的Ca 2 + 通道(VDCC)流入,触发神经递质的释放。位于突触末端的VDCC亚型的不同表达模式影响由动作电位触发的Ca 2 + 涌入诱导的细胞内Ca 2 + 动力学。但是,尚不清楚VDCC亚型的表达模式是取决于每个轴突末端还是神经元亚型。此外,关于这些VDCC亚型如何调节神经递质释放可能性的信息很少。为了解决这些问题,我们从雄性或雌性大鼠岛状皮层的GABA能神经元中进行了多个全细胞膜片钳记录。在GABA能神经元之间的抑制连接之间,成对脉冲比率(PPR; 50毫秒的刺激间隔)差异很大。 N型VDCC阻滞剂ω-芋螺毒素GVIA(CgTx; 3μm)增强了单体IPSC的PPR,而ω-毒素IVA(AgTx,200 nm)对P / Q型VDCC的阻滞降低了PPR。在存在CgTx的情况下,施加4 mm [Ca 2 + ] o或Roscovitine(一种P / Q型活化剂)会增加PPR。这些结果表明,P / Q型VDCC的募集会增加PPR,而N型VDCC会抑制PPR。此外,我们发现,带有AgTx的Ca 2 + 依赖性K + 通道的阻断剂Charybdotoxin或apamin会增加PPR,提示Ca 2 + 的K + 通道耦合到N型VDCC,并抑制GABA能神经元末端的PPR。 [Ca 2 + ] o变化的方差均值分析显示,GABA能突触的PPR与释放概率之间呈负相关。这些结果表明,GABA能神经元轴突以不同的方式表达N型和/或P / Q型VDCC,并且这些VDCC以不同的方式调节GABA释放的可能性。>意义声明 GABA能神经元轴突靶向多个神经元并释放。 Ca 2 + 通过电压依赖性Ca 2 + 通道(VDCC)流入触发GABA,包括N型和P / Q型通道。关于GABA能突触末端的VDCC表达模式及其在短期可塑性中的作用知之甚少。我们使用多个全细胞膜片钳记录研究了大脑皮层中GABA能神经元之间的抑制性突触连接,并发现了从单个突触前神经元分支出来的VDCC在突触末端的不同表达方式。此外,我们观察到分别由P / Q型和N型VDCC介导的IPSC的促进性和抑制性短期可塑性。这些结果表明,VDCC表达模式调节每个GABA能轴突末端中突触传递的独特类型,即使它们从常见的突触前神经元分支出来也是如此。

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