The Modulation of Error Processing in the Medial Frontal Cortex by Transcranial Direct Current Stimulation.

Neuroscience journal Pub Date : 2013-01-01 Epub Date: 2013-04-17 DOI:10.1155/2013/187692
Lisa Bellaïche, Manish Asthana, Ann-Christine Ehlis, Thomas Polak, Martin J Herrmann
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引用次数: 30

Abstract

Background. In order to prevent future errors, we constantly control our behavior for discrepancies between the expected (i.e., intended) and the real action outcome and continuously adjust our behavior accordingly. Neurophysiological correlates of this action-monitoring process can be studied with event-related potentials (error-related negativity (ERN) and error positivity (Pe)) originating from the medial prefrontal cortex (mPFC). Patients with neuropsychiatric diseases often show performance monitoring dysfunctions potentially caused by pathological changes of cortical excitability; therefore, a modulation of the underlying neuronal activity might be a valuable therapeutic tool. One technique which allows us to explore cortical modulation of neural networks is transcranial direct current stimulation (tDCS). Therefore, we tested the effect of medial-prefrontal tDCS on error-monitoring potentials in 48 healthy subjects randomly assigned to anodal, cathodal, or sham stimulation. Results. We found that cathodal stimulation attenuated Pe amplitudes compared to both anodal and sham stimulation, but no effect for the ERN. Conclusions. Our results indicate that cathodal tDCS over the mPFC results in an attenuated cortical excitability leading to decreased Pe amplitudes. We therefore conclude that tDCS has a neuromodulatory effect on error-monitoring systems suggesting a future approach to modify the sensitivity of corresponding neural networks in patients with action-monitoring deficits.

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经颅直流电刺激对额叶内侧皮层错误加工的调节。
背景。为了防止未来的错误,我们不断地控制自己的行为,以发现预期(即预期)与实际行动结果之间的差异,并不断相应地调整自己的行为。这种动作监测过程的神经生理学相关性可以通过源自内侧前额叶皮层(mPFC)的事件相关电位(错误相关负性(ERN)和错误正性(Pe))来研究。神经精神疾病患者常表现出可能由皮层兴奋性病理改变引起的行为监测功能障碍;因此,调节潜在的神经元活动可能是一种有价值的治疗工具。经颅直流电刺激(tDCS)是一种可以让我们探索神经网络皮层调节的技术。因此,我们在48名健康受试者中测试了正中前额叶tDCS对错误监测电位的影响,这些受试者被随机分配到阳极、阴极或假刺激组。结果。我们发现,与阳极和假刺激相比,阴极刺激会减弱Pe振幅,但对ERN没有影响。结论。我们的研究结果表明,阴极tDCS在mPFC上导致皮质兴奋性减弱,导致Pe振幅下降。因此,我们得出结论,tDCS对错误监测系统具有神经调节作用,这表明未来的方法可以修改动作监测缺陷患者相应神经网络的敏感性。
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