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在伏隔核中间神经元中,树突 KIR 和 KAs 通道对突触电位和细胞兴奋性的调制:一项计算研究。

Modulation of synaptic potentials and cell excitability by dendritic KIR and KAs channels in nucleus accumbens medium spiny neurons: a computational study.

机构信息

Biomedical Engineering Group, Department of Biosciences and Bioengineering, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.

出版信息

J Biosci. 2011 Jun;36(2):309-28. doi: 10.1007/s12038-011-9039-8.

Abstract

The nucleus accumbens (NAc), a critical structure of the brain reward circuit, is implicated in normal goal-directed behaviour and learning as well as pathological conditions like schizophrenia and addiction. Its major cellular substrates, the medium spiny (MS) neurons, possess a wide variety of dendritic active conductances that may modulate the excitatory post synaptic potentials (EPSPs) and cell excitability. We examine this issue using a biophysically detailed 189-compartment stylized model of the NAc MS neuron, incorporating all the known active conductances. We find that, of all the active channels, inward rectifying K+ (KIR) channels play the primary role in modulating the resting membrane potential (RMP) and EPSPs in the down-state of the neuron. Reduction in the conductance of KIR channels evokes facilitatory effects on EPSPs accompanied by rises in local input resistance and membrane time constant. At depolarized membrane potentials closer to up-state levels, the slowly inactivating A-type potassium channel (KAs) conductance also plays a strong role in determining synaptic potential parameters and cell excitability. We discuss the implications of our results for the regulation of accumbal MS neuron biophysics and synaptic integration by intrinsic factors and extrinsic agents such as dopamine.

摘要

伏隔核(NAc)是大脑奖励回路的关键结构,它与正常的目标导向行为和学习有关,也与精神分裂症和成瘾等病理状况有关。其主要的细胞基质,中等棘突(MS)神经元,具有广泛的树突活性电导,可能调节兴奋性突触后电位(EPSP)和细胞兴奋性。我们使用 NAc MS 神经元的生物物理详细的 189 个隔室简化模型来检查这个问题,该模型包含了所有已知的活性电导。我们发现,在所有的活性通道中,内向整流钾(KIR)通道在神经元的下状态中对调节静息膜电位(RMP)和 EPSP 起着主要作用。KIR 通道电导的降低对 EPSP 产生促进作用,同时伴随着局部输入电阻和膜时间常数的升高。在更接近上状态水平的去极化膜电位下,缓慢失活的 A 型钾通道(KAs)电导也在决定突触电位参数和细胞兴奋性方面起着重要作用。我们讨论了我们的结果对内在因素和外源性药物如多巴胺调节伏隔核 MS 神经元生物物理学和突触整合的影响。

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