Rathour Rahul Kumar, Malik Ruchi, Narayanan Rishikesh
Cellular Neurophysiology Laboratory, Molecular Biophysics Unit, Indian Institute of Science, Bangalore, India.
Center for Learning and Memory, The University of Texas at Austin, Austin, TX, USA.
Sci Rep. 2016 Apr 20;6:24678. doi: 10.1038/srep24678.
Hippocampal pyramidal neurons express an intraneuronal map of spectral tuning mediated by hyperpolarization-activated cyclic-nucleotide-gated nonspecific-cation channels. Modeling studies have predicted a critical regulatory role for A-type potassium (KA) channels towards augmenting functional robustness of this map. To test this, we performed patch-clamp recordings from soma and dendrites of rat hippocampal pyramidal neurons, and measured spectral tuning before and after blocking KA channels using two structurally distinct pharmacological agents. Consistent with computational predictions, we found that blocking KA channels resulted in a significant reduction in resonance frequency and significant increases in input resistance, impedance amplitude and action-potential firing frequency across the somato-apical trunk. Furthermore, across all measured locations, blocking KA channels enhanced temporal summation of postsynaptic potentials and critically altered the impedance phase profile, resulting in a significant reduction in total inductive phase. Finally, pair-wise correlations between intraneuronal percentage changes (after blocking KA channels) in different measurements were mostly weak, suggesting differential regulation of different physiological properties by KA channels. Our results unveil a pivotal role for fast transient channels in regulating theta-frequency spectral tuning and intrinsic phase response, and suggest that degeneracy with reference to several coexisting functional maps is mediated by cross-channel interactions across the active dendritic arbor.
海马锥体细胞表达一种由超极化激活的环核苷酸门控非特异性阳离子通道介导的神经元内频谱调谐图谱。建模研究预测,A 型钾通道(KA)对增强该图谱的功能稳健性具有关键调节作用。为了验证这一点,我们对大鼠海马锥体细胞的胞体和树突进行了膜片钳记录,并使用两种结构不同的药理学试剂在阻断 KA 通道前后测量了频谱调谐。与计算预测一致,我们发现阻断 KA 通道导致共振频率显著降低,并且在整个胞体 - 顶端树突主干上,输入电阻、阻抗幅度和动作电位发放频率显著增加。此外,在所有测量位置,阻断 KA 通道增强了突触后电位的时间总和,并严重改变了阻抗相位分布,导致总感应相位显著降低。最后,不同测量中(阻断 KA 通道后)神经元内百分比变化之间的成对相关性大多较弱,表明 KA 通道对不同生理特性具有差异调节作用。我们的结果揭示了快速瞬态通道在调节θ频率频谱调谐和内在相位响应中的关键作用,并表明在几个共存的功能图谱方面的简并性是由活跃树突分支上的跨通道相互作用介导的。