Laboratory for Neurobiology of Psychiatric Disorders, Sagol Department of Neurobiology, University of Haifa, 199 Aba Khoushy Avenue, Mt. Carmel, 3498838 Haifa, Israel.
Laboratory for Neurobiology of Psychiatric Disorders, Sagol Department of Neurobiology, University of Haifa, 199 Aba Khoushy Avenue, Mt. Carmel, 3498838 Haifa, Israel.
Cell Rep. 2021 Oct 12;37(2):109832. doi: 10.1016/j.celrep.2021.109832.
Transcranial neurostimulation methods are utilized as therapies for various neuropsychiatric disorders. Primarily, they entail the delivery of weak subthreshold currents across the brain, which modulate neuronal excitability. However, it is still a puzzle how such weak electrical fields actuate their effects. Previous studies showed that axons are the most sensitive subcellular compartment for direct current stimulation, and maximal polarization is achieved at their terminals. Nonetheless, polarization of axon terminals according to models was predicted to be weak, and the mechanism for substantial axon terminals polarization was obscure. Here, we show that a weak subthreshold electrical field modifies the conductance of voltage-dependent sodium channels in axon terminals, subsequently amplifying their membrane polarization. Moreover, we show that this amplification has substantial effects on synaptic functioning. Finally, we employ analytical modeling to explain how sodium currents modifications enhance axon terminal polarization. These findings relate to the mechanistic aspects of any neurostimulation technique.
经颅神经刺激方法被用作治疗各种神经精神疾病的疗法。它们主要通过在大脑上施加弱的亚阈值电流来调节神经元的兴奋性。然而,这种弱电场如何产生作用仍然是一个谜。以前的研究表明,轴突是直流电刺激最敏感的亚细胞区室,并且在其末端达到最大极化。然而,根据模型预测,轴突末端的极化是微弱的,并且轴突末端极化的机制尚不清楚。在这里,我们表明,一个弱的亚阈值电场会改变轴突末端电压门控钠离子通道的电导,从而放大它们的膜极化。此外,我们表明,这种放大对突触功能有实质性的影响。最后,我们采用分析模型来解释钠离子流的改变如何增强轴突末端的极化。这些发现与任何神经刺激技术的机制方面有关。