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Non-Decaying postsynaptics potentials and delayed spikes in hippocampal pyramidal neurons generated by a zero slope conductance created by the persistent Na+ current

机译:Na +持续电流产生的零斜率电导产生的海马锥体神经元的非衰变突触后电位和延迟峰

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The negative slope conductance created by the persistent sodium current (I_(NaP)) prolongs the decay phase of excitatory postsynaptic potentials (EPSPs). In a recent study, we demonstrated that this effect was due to an increase of the membrane time constant. When the negative slope conductance opposes completely the positive slope conductances of the other currents it creates a zero slope conductance region. In this region the membrane time constant is infinite and the decay phase of the EPSPs is virtually absent. Here we show that non-decaying EPSPs are present in CA1 hippocampal pyramidal cells in the zero slope conductance region, in the suprathreshold range of membrane potential. Na~(+) channel block with tetrodotoxin abolishes the non-decaying EPSPs. Interestingly, the non-decaying EPSPs are observed only in response to artificial excitatory postsynaptic currents (aEPSCs) of small amplitude, and not in response to aEPSCs of big amplitude. We also observed concomitantly delayed spikes with long latencies and high variability only in response to small amplitude aEPSCs. Our results showed that in CA1 pyramidal neurons I_(NaP) creates non-decaying EPSPs and delayed spikes in the subthreshold range of membrane potentials, which could potentiate synaptic integration of synaptic potentials coming from distal regions of the dendritic tree.
机译:持续钠电流(I_(NaP))产生的负斜率电导延长了兴奋性突触后电位(EPSPs)的衰减阶段。在最近的研究中,我们证明了这种作用是由于膜时间常数的增加。当负斜率电导完全抵制其他电流的正斜率电导时,它将创建一个零斜率电导区域。在该区域中,膜时间常数是无限的,EPSP的衰减阶段实际上不存在。在这里,我们显示在膜电位的超阈值范围内,零坡度电导区域的CA1海马锥体细胞中存在非衰变EPSP。带有河豚毒素的Na〜(+)通道阻滞消除了非衰变的EPSP。有趣的是,仅在响应于小振幅的人工兴奋性突触后电流(aEPSC)时才观察到非衰减的EPSP,而对较大的aEPSC则没有观察到。我们还观察到只有在响应小幅度aEPSC的情况下,伴随长时延和高变异性的延迟峰值出现。我们的研究结果表明,在CA1锥体神经元I_(NaP)会在膜电位的亚阈值范围内产生非衰减的EPSPs和延迟的峰值,这可能会增强来自树突树远端区域的突触电位的突触整合。

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