首页> 外文期刊>The Journal of Physiology >Non-synaptic mechanisms underlie the after-effects of cathodal transcutaneous direct current stimulation of the human brain.
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Non-synaptic mechanisms underlie the after-effects of cathodal transcutaneous direct current stimulation of the human brain.

机译:非突触机制是人脑阴极经皮直流电刺激的后效应的基础。

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Although cathodal transcranial direct current stimulation (tDCS) decreases cortical excitability, the mechanisms underlying DC-induced changes remain largely unclear. In this study we investigated the effect of cathodal DC stimulation on spontaneous neural activity and on motor responses evoked by stimulation of the central and peripheral nervous system. We studied 17 healthy volunteers. Transcranial magnetic stimulation (TMS) and transcranial electrical stimulation (TES) of the motor area were used to study the effects of cathodal tDCS (1.5 mA, 10 min) on resting motor threshold and motor evoked potentials (MEPs) recorded from the contralateral first dorsal interosseous muscle (FDI). The electroencephalographic (EEG) activity in response to cathodal tDCS was analysed by power spectral density (PSD). Motor axonal excitability changes in response to transcutaneous DC stimulation of the ulnar nerve (0.3 mA, 10 min) were assessed by testing changes in the size of the compound muscle action potential (CMAP) elicited by submaximal nerve stimulation. Cathodal tDCS over the motor area for 10 min increased the motor threshold and decreased the size of MEPs evoked by TMS for at least 60 min after current offset (t(0) 71.7 +/- 5%, t(20) 50.8 +/- 11%, t(40) 47.7 +/- 7.7%, and t(60) 39.7 +/- 6.4%, P < 0.01). The tDCS also significantly decreased the size of MEPs elicited by TES (t(0) 64 +/- 16.4%, P = 0.09; t(20) 67.6 +/- 10.8%, P = 0.06; and t(40) 58.3 +/- 9.9%, P < 0.05). At the same time in the EEG the power of delta (2-4 Hz) and theta (4-7 Hz) rhythms increased (delta 181.1 +/- 40.2, P < 0.05; and theta 138.7 +/- 27.6, P = 0.07). At the peripheral level cathodal DC stimulation increased the size of the ulnar nerve CMAP (175 +/- 34.3%, P < 0.05). Our findings demonstrate that the after-effects of tDCS have a non-synaptic mechanism of action based upon changes in neural membrane function. These changes apart from reflecting local changes in ionic concentrations, could arise from alterations in transmembrane proteins and from electrolysis-related changes in [H(+)] induced by exposure to constant electric field.
机译:尽管阴极经颅直流电刺激(tDCS)降低了皮层兴奋性,但直流诱导的变化的潜在机制仍不清楚。在这项研究中,我们研究了阴极DC刺激对自发神经活动和中枢神经和周围神经系统刺激引起的运动反应的影响。我们研究了17名健康志愿者。使用经颅磁刺激(TMS)和经颅电刺激(TES)来研究运动区的阴极tDCS(1.5 mA,10分钟)对静息运动阈值和对侧第一背记录的运动诱发电位(MEP)的影响骨间肌(FDI)。通过功率谱密度(PSD)分析了响应阴极tDCS的脑电图(EEG)活性。通过测试次最大神经刺激引起的复合肌肉动作电位(CMAP)大小的变化,评估了对尺神经经皮DC刺激(0.3 mA,10分钟)做出的运动轴突兴奋性变化。电机区域上的阴极tDCS持续10分钟会增加电机阈值并减小电流偏移后至少60分钟内TMS诱发的MEP的大小(t(0)71.7 +/- 5%,t(20)50.8 +/- 11%,t(40)47.7 +/- 7.7%和t(60)39.7 +/- 6.4%,P <0.01)。 tDCS还显着降低了由TES引起的MEP的大小(t(0)64 +/- 16.4%,P = 0.09; t(20)67.6 +/- 10.8%,P = 0.06;和t(40)58.3 + /-9.9%,P <0.05)。同时在EEG中,δ(2-4 Hz)和theta(4-7 Hz)节律的功率增加(δ181.1 +/- 40.2,P <0.05; theta 138.7 +/- 27.6,P = 0.07 )。在外周水平,阴极DC刺激增加了尺神经CMAP的大小(175 +/- 34.3%,P <0.05)。我们的发现表明,tDCS的后效应具有基于神经膜功能变化的非突触作用机制。这些变化除了反映离子浓度的局部变化外,还可能是由于跨膜蛋白的变化以及由于暴露于恒定电场而引起的[H(+)]的电解相关变化。

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