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个体基线表现和电极组合对左侧背外侧前额叶皮层阳极经颅直流电刺激效果的影响。

Individual Baseline Performance and Electrode Montage Impact on the Effects of Anodal tDCS Over the Left Dorsolateral Prefrontal Cortex.

作者信息

Splittgerber Maike, Salvador Ricardo, Brauer Hannah, Breitling-Ziegler Carolin, Prehn-Kristensen Alexander, Krauel Kerstin, Nowak Rafal, Ruffini Giulio, Moliadze Vera, Siniatchkin Michael

机构信息

Institute of Medical Psychology and Medical Sociology, University Medical Center-Schleswig Holstein, Kiel University, Kiel, Germany.

Neuroelectrics Barcelona, Barcelona, Spain.

出版信息

Front Hum Neurosci. 2020 Sep 8;14:349. doi: 10.3389/fnhum.2020.00349. eCollection 2020.

Abstract

Anodal transcranial direct current stimulation (tDCS), applied over the left dorsolateral prefrontal cortex (lDLPFC), can produce significant effects on working memory (WM) performance and associated neurophysiological activity. However, results from previous studies are inconsistent and occasionally contradictory. This inconsistency may be attributed to methodological and individual differences during experiments. This study therefore investigated two hypotheses: (1) A multichannel-optimized montage was expected to be more effective than a classical bipolar montage, because of increased focality. (2) The subjects were expected to benefit differently from the stimulation depending on their initial task performance. In a sham-controlled crossover study, 24 healthy participants received bipolar, multichannel, and sham stimulation for 20 min in randomized order, targeting the lDLPFC while performing a 2-back WM task. After stimulation, electroencephalography (EEG) was recorded at rest and during 2-back and nontarget continuous performance task (CPT) performance. Bipolar and multichannel stimulations were both well tolerated and effectively blinded. We found no effect of stimulation on behavioral performance or neuronal oscillations comparing the classical bipolar or multichannel montage with sham stimulation. We did, however, find an interaction between stimulation and initial task performance. For multichannel stimulation, initially low-performing participants tended to improve their WM performance while initially high-performing participants tended to worsen their performance compared to sham stimulation. Both tDCS montages induced changes in neural oscillatory power, which correlated with baseline performance. The worse the participants' initial WM performance was, the more task-related theta power was induced by multichannel and bipolar stimulation. The same effect was observed for alpha power in the nontarget task following multichannel stimulation. Notably, we were not able to show a superiority of multichannel stimulation compared to bipolar stimulation. Still, comparing both montages with sham stimulation, multichannel stimulation led to stronger effects than bipolar stimulation. The current study highlights the importance of investigating different parameters with potential influence on tDCS effects in combination. Our results demonstrate how individual differences in cognitive performance and electrode montages influence effects of tDCS on neuropsychological performance. These findings support the idea of an individualized and optimized stimulation setting, potentially leading to increased tDCS effects.

摘要

将阳极经颅直流电刺激(tDCS)施加于左侧背外侧前额叶皮层(lDLPFC),可对工作记忆(WM)表现及相关神经生理活动产生显著影响。然而,先前研究的结果并不一致,偶尔甚至相互矛盾。这种不一致可能归因于实验过程中的方法学差异和个体差异。因此,本研究调查了两个假设:(1)由于聚焦性增强,多通道优化电极配置预计比经典双极电极配置更有效。(2)根据受试者的初始任务表现,预计他们从刺激中获益的程度会有所不同。在一项假刺激对照的交叉研究中,24名健康参与者以随机顺序接受双极、多通道和假刺激,每次刺激20分钟,刺激靶点为lDLPFC,同时进行2-back工作记忆任务。刺激后,在静息状态以及进行2-back和非目标连续作业任务(CPT)时记录脑电图(EEG)。双极和多通道刺激均耐受性良好且有效实现了盲法。与假刺激相比,我们发现经典双极或多通道电极配置的刺激对行为表现或神经元振荡均无影响。然而,我们确实发现刺激与初始任务表现之间存在相互作用。对于多通道刺激,与假刺激相比,初始表现较差的参与者往往会提高其工作记忆表现,而初始表现较好的参与者往往会使其表现变差。两种tDCS电极配置均诱导了神经振荡功率的变化,且这种变化与基线表现相关。参与者的初始工作记忆表现越差,多通道和双极刺激诱导的与任务相关的θ功率就越大。多通道刺激后,在非目标任务中对α功率也观察到了同样的效应。值得注意的是,我们未能证明多通道刺激比双极刺激更具优势。尽管如此,将两种电极配置与假刺激进行比较时,多通道刺激比双极刺激产生的效应更强。当前研究强调了综合研究可能对tDCS效应产生潜在影响的不同参数的重要性。我们的结果表明了认知表现和电极配置中的个体差异如何影响tDCS对神经心理表现的效应。这些发现支持了个性化和优化刺激设置的观点,这可能会增强tDCS的效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c36/7506510/cfee5d5c47a0/fnhum-14-00349-g0001.jpg

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