Rathour Rahul Kumar, Kaphzan Hanoch
Sagol Department of Neurobiology, University of Haifa, Haifa, Israel.
iScience. 2024 Feb 15;27(3):109230. doi: 10.1016/j.isci.2024.109230. eCollection 2024 Mar 15.
Transcranial direct current stimulation (tDCS) induces subcellular compartmental-dependent polarization, maximal in the distal portions of axons and dendrites. Using a morphologically realistic neuron model, we simulated tDCS-induced membrane polarization of the apical dendrite. Thus, we investigated the differential dendritic effects of anodal and cathodal tDCS on membrane potential polarization along the dendritic structure and its subsequent effects on dendritic membrane resistance, excitatory postsynaptic potential amplitude, backpropagating action potential amplitude, input/output relations, and long-term synaptic plasticity. We further showed that the effects of anodal and cathodal tDCS on the backpropagating action potential were asymmetric, and explained this asymmetry. Additionally, we showed that the effects on input/output relations were rather weak and limited to the low-mid range of stimulation frequencies, and that synaptic plasticity effects were mostly limited to the distal portion of the dendrite. Thus, we demonstrated how tDCS modifies dendritic physiology due to the dendrite's unique morphology and composition of voltage-gated ion channels.
经颅直流电刺激(tDCS)可诱导亚细胞区室依赖性极化,在轴突和树突的远端部分最为显著。我们使用一个形态逼真的神经元模型,模拟了tDCS诱导的顶端树突膜极化。因此,我们研究了阳极和阴极tDCS对沿树突结构的膜电位极化的不同树突效应,及其对树突膜电阻、兴奋性突触后电位幅度、反向传播动作电位幅度、输入/输出关系和长期突触可塑性的后续影响。我们进一步表明,阳极和阴极tDCS对反向传播动作电位的影响是不对称的,并解释了这种不对称性。此外,我们表明,对输入/输出关系的影响相当微弱,且仅限于低至中频的刺激频率范围,而突触可塑性效应大多局限于树突的远端部分。因此,我们证明了tDCS如何由于树突独特的形态和电压门控离子通道的组成而改变树突生理。