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Active dendrites and spike propagation in multicompartment models of oriens-lacunosum/moleculare hippocampal interneurons

机译:中华绒螯蟹/分子海马interneurons多室模型中的主动树突和穗传播。

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摘要

It is well known that interneurons are heterogeneous in their morphologies, biophysical properties, pharmacological sensitivities and electrophysiological responses, but it is unknown how best to understand this diversity. Given their critical roles in shaping brain output, it is important to try to understand the functionality of their computational characteristics. To do this, we focus on specific interneuron subtypes. In particular, it has recently been shown that long-term potentiation is induced specifically on oriens-lacunosum/moleculare (O-LM) interneurons in hippocampus CA1 and that the same cells contain the highest density of dendritic sodium and potassium conductances measured to date. We have created multi-compartment models of an O-LM hippocampal interneuron using passive properties, channel kinetics, densities and distributions specific to this cell type, and explored its signalling characteristics. We found that spike initiation depends on both location and amount of input, as well as the intrinsic properties of the interneuron. Distal synaptic input always produces strong back-propagating spikes whereas proximal input could produce both forward- and back-propagating spikes depending on the input strength. We speculate that the highly active dendrites of these interneurons endow them with a specialized function within the hippocampal circuitry by allowing them to regulate direct and indirect signalling pathways within the hippocampus.
机译:众所周知,中间神经元在形态,生物物理特性,药理敏感性和电生理反应方面是异质的,但是如何最好地理解这种多样性是未知的。考虑到它们在塑造大脑输出中的关键作用,重要的是设法了解其计算特征的功能。为此,我们关注特定的中间神经元亚型。特别是,最近显示,长期增强作用是在海马CA1中的oriens-lacunosum / moleculare(O-LM)中间神经元上特异性诱导的,并且迄今为止,这些细胞中树突状钠和钾电导的密度最高。我们使用该细胞类型特有的被动特性,通道动力学,密度和分布创建了O-LM海马中间神经元的多室模型,并研究了其信号传导特性。我们发现,尖峰启动取决于输入的位置和数量,以及中间神经元的固有属性。远端突触输入始终会产生较强的向后传播尖峰,而近端输入会根据输入强度而产生向前和向后传播尖峰。我们推测,这些中间神经元的高活性树突通过允许它们调节海马内的直接和间接信号通路,使其在海马电路内具有特殊功能。

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