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Endocannabinoid Release Modulates Electrical Coupling between CCK Cells Connected via Chemical and Electrical Synapses in CA1

机译:内源性大麻素释放调节通过CA1中化学和电突触连接的CCK细胞之间的电耦合。

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摘要

Electrical coupling between some subclasses of interneurons is thought to promote coordinated firing that generates rhythmic synchronous activity in cortical regions. Synaptic activity of cholecystokinin (CCK) interneurons which co-express cannabinoid type-1 (CB1) receptors are powerful modulators of network activity via the actions of endocannabinoids. We investigated the modulatory actions of endocannabinoids between chemically and electrically connected synapses of CCK cells using paired whole-cell recordings combined with biocytin and double immunofluorescence labeling in acute slices of rat hippocampus at P18–20 days. CA1 stratum radiatum CCK Schaffer collateral-associated cells were coupled electrically with each other as well as CCK basket cells and CCK cells with axonal projections expanding to dentate gyrus. Approximately 50% of electrically coupled cells received facilitating, asynchronously released inhibitory postsynaptic potential (IPSPs) that curtailed the steady-state coupling coefficient by 57%. Tonic CB1 receptor activity which reduces inhibition enhanced electrical coupling between cells that were connected via chemical and electrical synapses. Blocking CB1 receptors with antagonist, AM-251 (5 μM) resulted in the synchronized release of larger IPSPs and this enhanced inhibition further reduced the steady-state coupling coefficient by 85%. Depolarization induced suppression of inhibition (DSI), maintained the asynchronicity of IPSP latency, but reduced IPSP amplitudes by 95% and enhanced the steady-state coupling coefficient by 104% and IPSP duration by 200%. However, DSI did not did not enhance electrical coupling at purely electrical synapses. These data suggest that different morphological subclasses of CCK interneurons are interconnected via gap junctions. The synergy between the chemical and electrical coupling between CCK cells probably plays a role in activity-dependent endocannabinoid modulation of rhythmic synchronization.
机译:中间神经元的某些子类之间的电耦合被认为可以促进协同放电,从而在皮质区域产生有节奏的同步活动。共表达大麻素1型(CB1)受体的胆囊收缩素(CCK)中枢神经元的突触活性是通过内源性大麻素的作用来调节网络活动的强大调节剂。我们使用配对的全细胞记录结合生物素和双重免疫荧光标记法在大鼠海马P18–20天急性切片中研究了化学和电连接的CCK突触之间内源性大麻素的调节作用。 CA1放射状层CCK Schaffer侧支相关细胞与CCK篮状细胞和CCK细胞相互电耦合,轴突突伸至齿状回。大约50%的电耦合细胞接受促进的,异步释放的抑制性突触后电位(IPSP),从而使稳态耦合系数降低了57%。减少抑制作用的强直CB1受体活性增强了通过化学和电突触连接的细胞之间的电耦合。用拮抗剂AM-251(5μM)阻断CB1受体导致了较大IPSP的同步释放,这种增强的抑制作用进一步使稳态偶联系数降低了85%。去极化诱导的抑制抑制(DSI)保持了IPSP延迟的异步性,但是将IPSP幅度降低了95%,并将稳态耦合系数提高了104%,并将IPSP持续时间提高了200%。但是,DSI并没有增强纯电突触的电耦合。这些数据表明,CCK中神经元的不同形态亚类通过间隙连接相互连接。 CCK细胞之间化学和电耦合之间的协同作用可能在节律性同步的活动依赖性内源性大麻素调制中起作用。

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