Non-invasive Brain Stimulation & Neuroplasticity Laboratory, Department of Physiotherapy, School of Primary and Allied Health Care, Faculty of Medicine, Nursing and Health Science, Monash University, Melbourne, Australia.
Department of Neurology, University Medical Hospital Bergmannsheil, Bochum, Germany; Dept. Psychology and Neurosciences, Leibniz Research Centre for Working Environment and Human Factors, Dortmund, Germany.
Brain Stimul. 2020 May-Jun;13(3):832-839. doi: 10.1016/j.brs.2020.02.027. Epub 2020 Feb 26.
Transcranial direct current stimulation (tDCS) is used to induce neuroplasticity in the human brain. Within certain limits of stimulation duration, anodal tDCS (a-tDCS) over the primary motor cortex induces long term potentiation- (LTP) like plasticity. A reversal of the direction of plasticity has however been described with prolonged a-tDCS protocols.
We aimed to systematically investigate the intervention duration threshold for reversal of a-tDCS-induced effects on corticospinal excitability (CSE) and to determine the probable mechanisms involved in these changes.
Fifteen healthy participants received a-tDCS of 1 mA for five different durations in pseudo-random session order. Transcranial magnetic stimulation (TMS) was delivered over the left M1, and motor evoked potentials (MEPs) of a contralateral hand muscle were recorded before, immediately and 30 min following intervention to measure CSE changes. Short-interval intracortical inhibition (SICI), intracortical facilitation (ICF), and long interval facilitation (LIF) were assessed via paired-pulse TMS protocols.
A-tDCS significantly increased CSE as expected at stimulation durations of 22 and 24 min. However, this effect of a-tDCS on CSE decreased and even reversed when stimulation duration increased to 26, 28, and 30 min. Respective alterations of ICF, LIF, and SICI indicate the involvement of glutamatergic, and GABAergic systems in these effects.
These results confirm a duration threshold for reversal of the excitability-enhancing effect of a-tDCS with stimulation durations ≥ 26 min. Counter-regulatory mechanisms are discussed as a mechanistic foundation for these effects, which might prevent excessive brain activation.
经颅直流电刺激(tDCS)用于诱导人类大脑的神经可塑性。在刺激持续时间的一定限制内,对初级运动皮层的阳极 tDCS(a-tDCS)会引起类似于长时程增强(LTP)的可塑性。然而,随着延长 a-tDCS 方案的进行,已经描述了可塑性方向的逆转。
我们旨在系统地研究逆转 a-tDCS 诱导的皮质脊髓兴奋性(CSE)的干预持续时间阈值,并确定这些变化涉及的可能机制。
15 名健康参与者以伪随机会话顺序接受了 1 mA 的 a-tDCS 五种不同的持续时间。经颅磁刺激(TMS)施加于左侧 M1,干预前后 30 分钟记录对侧手部肌肉的运动诱发电位(MEPs),以测量 CSE 变化。通过成对脉冲 TMS 方案评估短间隔内皮质抑制(SICI)、皮质内易化(ICF)和长间隔易化(LIF)。
如预期的那样,a-tDCS 在刺激持续时间为 22 和 24 分钟时显著增加了 CSE。然而,当刺激持续时间增加到 26、28 和 30 分钟时,a-tDCS 对 CSE 的这种作用会减少甚至逆转。相应的 ICF、LIF 和 SICI 的改变表明谷氨酸能和 GABA 能系统参与了这些效应。
这些结果证实了刺激持续时间≥26 分钟时,a-tDCS 增强兴奋性效应的逆转存在持续时间阈值。作为这些效应的机制基础,讨论了反调节机制,这可能会防止大脑过度激活。