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Cl- homeodynamics in gap junction-coupled astrocytic networks on activation of GABAergic synapses

机译:GABA能突触激活的间隙连接耦合星形细胞网络中的Cl-动力学。

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Abstract The electrophysiological properties and functional role of GABAergic signal transmission from neurons to the gap junction-coupled astrocytic network are still unclear. GABA-induced astrocytic Cl- flux has been hypothesized to affect the driving force for GABAergic transmission by modulating [Cl-]o. Thus, revealing the properties of GABA-mediated astrocytic responses will deepen our understanding of GABAergic signal transmission. Here, we analysed the Cl- dynamics of neurons and astrocytes in CA1 hippocampal GABAergic tripartite synapses, using Cl- imaging during GABA application, and whole cell recordings from interneuron-astrocyte pairs in the stratum lacunosum-moleculare. Astrocytic [Cl-]i was adjusted to physiological conditions (40 mm). Although GABA application evoked bidirectional Cl- flux via GABAA receptors and mouse GABA transporter 4 (mGAT4) in CA1 astrocytes, a train of interneuron firing induced only GABAA receptor-mediated inward currents in an adjacent astrocyte. A GAT1 inhibitor increased the interneuron firing-induced currents and induced bicuculline-insensitive, mGAT4 inhibitor-sensitive currents, suggesting that synaptic spillover of GABA predominantly induced the astrocytic Cl- efflux because GABAA receptors are localized near the synaptic clefts. This GABA-induced Cl- efflux was accompanied by Cl- siphoning via the gap junctions of the astrocytic network because gap junction inhibitors significantly reduced the interneuron firing-induced currents. Thus, Cl- efflux from astrocytes is homeostatically maintained within astrocytic networks. A gap junction inhibitor enhanced the activity-dependent depolarizing shifts of reversal potential of neuronal IPSCs evoked by repetitive stimulation to GABAergic synapses. These results suggest that Cl- conductance within the astrocytic network may contribute to maintaining GABAergic synaptic transmission by regulating [Cl-]o.
机译:摘要GABA能信号从神经元传递到间隙连接耦合的星形细胞网络的电生理特性和功能作用尚不清楚。假设GABA诱导的星形细胞Cl-通量通过调节[Cl-] o影响GABA能传递的驱动力。因此,揭示GABA介导的星形细胞反应的特性将加深我们对GABA能信号传递的理解。在这里,我们分析了CA1海马GABA能性三联突触中神经元和星形胶质细胞的Cl-动力学,使用了GABA应用过程中的Cl-成像,并从月桂层-分子层中的神经元-星形胶质细胞对中记录了全细胞。将星形细胞[Cl-] i调节至生理条件(40mm)。尽管GABA的应用在CA1星形胶质细胞中通过GABAA受体和小鼠GABA转运蛋白4(mGAT4)引起了双向Cl-通量,但一系列中间神经元的放电仅在邻近的星形胶质细胞中诱导了GABAA受体介导的内向电流。 GAT1抑制剂增加了神经元激发的电流,并诱导了对双小核细胞不敏感的mGAT4抑制剂敏感的电流,这表明GABA的突触溢出主要诱导星形胶质细胞外排,因为GABAA受体位于突触裂隙附近。这种GABA诱导的Cl-流出伴随通过星形细胞网络的间隙连接处的Cl-虹吸,因为间隙连接抑制剂显着降低了中间神经元激发电流。因此,星形胶质细胞的Cl-外流在星形细胞网络内保持稳态。间隙连接抑制剂增强了对GABA能突触的重复刺激引起的神经元IPSC逆转电位的活性依赖性去极化转变。这些结果表明,星形细胞网络中的Cl-传导可能通过调节[Cl-] o来维持GABA能突触传递。

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