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Differences in subthreshold resonance of hippocampal pyramidal cells and interneurons: the role of h-current and passive membrane characteristics

机译:海马锥体细胞和中间神经元亚阈共振的差异:h电流和被动膜特征的作用

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摘要

The intrinsic properties of distinct types of neuron play important roles in cortical network dynamics. One crucial determinant of neuronal behaviour is the cell's response to rhythmic subthreshold input, characterised by the input impedance, which can be determined by measuring the amplitude and phase of the membrane potential response to sinusoidal currents as a function of input frequency. In this study, we determined the impedance profiles of anatomically identified neurons in the CA1 region of the rat hippocampus (pyramidal cells as well as interneurons located in the stratum oriens, including OLM cells, fast-spiking perisomatic region-targeting interneurons and cells with axonal arbour in strata oriens and radiatum). The basic features of the impedance profiles, as well as the passive membrane characteristics and the properties of the sag in the voltage response to negative current steps, were cell-type specific. With the exception of fast-spiking interneurons, all cell types showed subthreshold resonance, albeit with distinct features. The HCN channel blocker ZD7288 (10 μm) eliminated the resonance and changed the shape of the impedance curves, indicating the involvement of the hyperpolarisation-activated cation current Ih. Whole-cell voltage-clamp recordings uncovered differences in the voltage-dependent activation and kinetics of Ih between different cell types. Biophysical modelling demonstrated that the cell-type specificity of the impedance profiles can be largely explained by the properties of Ih in combination with the passive membrane characteristics. We conclude that differences in Ih and passive membrane properties result in a cell-type-specific response to inputs at given frequencies, and may explain, at least in part, the differential involvement of distinct types of neuron in various network oscillations.
机译:不同类型神经元的内在特性在皮层网络动力学中起重要作用。神经元行为的一个关键决定因素是细胞对节律性亚阈值输入的反应,其特征在于输入阻抗,可以通过测量对正弦电流的膜电位响应的幅度和相位来确定输入频率的函数。在这项研究中,我们确定了在大鼠海马CA1区(在锥体层以及位于原始层中的中间神经元,包括OLM细胞,快速掺入靶向异界区域的中间神经元和轴突细胞)的解剖学鉴定神经元的阻抗谱。 Oriens和radiatum的乔木)。阻抗分布的基本特征,以及被动膜的特性和对负电流阶跃的电压响应中的下垂特性,都是特定于电池类型的。除快速加标的中间神经元外,所有细胞类型均显示亚阈值共振,尽管具有明显的特征。 HCN通道阻滞剂ZD7288(10μm)消除了共振,并改变了阻抗曲线的形状,表明参与了超极化激活的阳离子电流Ih。全细胞电压钳记录揭示了不同细胞类型之间Ih的电压依赖性激活和动力学差异。生物物理模型表明,阻抗谱的细胞类型特异性可以很大程度上由Ih的特性与被动膜特性相结合来解释。我们得出的结论是,Ih和被动膜特性的差异导致在给定频率下对输入的细胞类型特定响应,并且可能至少部分解释了不同类型的神经元在各种网络振荡中的不同参与。

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