Amplifying post-stimulation oscillatory dynamics by engaging synaptic plasticity with transcranial alternating current stimulation.

IF 3
Frontiers in network physiology Pub Date : 2025-07-18 eCollection Date: 2025-01-01 DOI:10.3389/fnetp.2025.1621283
Jeremie Lefebvre, Aref Pariz
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引用次数: 0

Abstract

Introduction: Periodic brain stimulation (PBS) techniques, either intracranial or non-invasive, electrical or magnetic, represent promising neuromodulatory tools for the treatment of neurological and neuropsychiatric disorders. Through the modulation of endogenous oscillations, PBS may engage synaptic plasticity, hopefully leading to persistent lasting effects. However, stabilizing such effects represents an important challenge: the interaction between induced electromagnetic fields and neural circuits may yield highly variable responses due to heterogeneous neuronal and synaptic biophysical properties, limiting PBS clinical potential.

Methods: In this study, we explored the conditions on which transcranial alternating current stimulation (tACS) as a common type of non-invasive PBS leads to amplified post-stimulation oscillatory power, persisting once stimulation has been turned off. We specifically examined the effects of heterogeneity in neuron time scales on post-stimulation dynamics in a population of balanced Leaky-Integrate and Fire (LIF) neurons that exhibit synchronous-irregular spiking activity.

Results: Our analysis reveals that such heterogeneity enables tACS to engage synaptic plasticity, amplifying post-stimulation power. Our results show that such post-stimulation aftereffects result from selective frequency- and cell-type-specific synaptic modifications. We evaluated the relative importance of stimulation-induced plasticity amongst and between excitatory and inhibitory populations.

Discussion: Our results indicate that heterogeneity in neurons' time scales and synaptic plasticity are both essential for stimulation to support post-stimulation aftereffects, notably to amplify the power of endogenous rhythms.

通过经颅交流电刺激突触可塑性放大刺激后振荡动力学。
周期性脑刺激(PBS)技术,无论是颅内还是非侵入性,电或磁,都是治疗神经和神经精神疾病的有前途的神经调节工具。通过调节内源性振荡,PBS可能参与突触可塑性,有望导致持久的持久影响。然而,稳定这种效果是一个重要的挑战:由于神经元和突触生物物理特性的异质性,诱导电磁场和神经回路之间的相互作用可能产生高度可变的反应,限制了PBS的临床潜力。方法:在本研究中,我们探讨了经颅交流电刺激(tACS)作为一种常见的非侵入性PBS,在何种条件下会导致刺激后振荡功率放大,并在刺激关闭后持续存在。我们特别研究了神经元时间尺度的异质性对表现出同步不规则峰活动的平衡的leaki - integration和Fire (LIF)神经元群体刺激后动态的影响。结果:我们的分析表明,这种异质性使tACS参与突触可塑性,放大刺激后的能力。我们的研究结果表明,这种刺激后的后遗症是由选择性频率和细胞类型特异性突触修饰引起的。我们评估了刺激诱导的可塑性在兴奋性和抑制性种群之间的相对重要性。讨论:我们的研究结果表明,神经元时间尺度的异质性和突触的可塑性对于刺激支持刺激后的后遗症,特别是放大内源性节律的力量都是必不可少的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.70
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