Neuromodulatory feasibility of a current limiter-based tDCS device: a resting-state electroencephalography study.

IF 3.2 4区 医学 Q2 ENGINEERING, BIOMEDICAL Biomedical Engineering Letters Pub Date : 2023-02-08 eCollection Date: 2023-08-01 DOI:10.1007/s13534-023-00269-9
Yun-Sung Lee, Miseon Shim, Ga-Young Choi, Sang Ho Kim, Wansu Lim, Jin-Woo Jeong, Young-Jin Jung, Han-Jeong Hwang
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Abstract

Recently, we introduced a current limiter-based novel transcranial direct-current stimulation (tDCS) device that does not generate significant tDCS-induced electrical artifacts, thereby facilitating simultaneous electroencephalography (EEG) measurement during tDCS application. In this study, we investigated the neuromodulatory effect of the tDCS device using resting-state EEG data measured during tDCS application in terms of EEG power spectral densities (PSD) and brain network indices (clustering coefficient and path length). Resting-state EEG data were recorded from 10 healthy subjects during both eyes-open (EO) and eyes-closed (EC) states for each of five different conditions (baseline, sham, post-sham, tDCS, and post-tDCS). In the tDCS condition, tDCS was applied for 12 min with a current intensity of 1.5 mA, whereas tDCS was applied only for the first 30 s in the sham condition. EEG PSD and brain network indices were computed for the alpha frequency band most closely associated with resting-state EEG. Both alpha PSD and network indices were found to significantly increase during and after tDCS application compared to those of the baseline condition in the EO state, but not in the EC state owing to the ceiling effect. Our results demonstrate the neuromodulatory effect of the tDCS device that does not generate significant tDCS-induced electrical artifacts, thereby allowing simultaneous measurement of electrical brain activity. We expect our novel tDCS device to be practically useful in exploring the impact of tDCS on neuromodulation more precisely using ongoing EEG data simultaneously measured during tDCS application.

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基于电流限制器的tDCS装置的神经调节可行性:静息状态脑电图研究。
最近,我们介绍了一种基于限流器的新型经颅直流刺激(tDCS)设备,该设备不会产生显著的tDCS诱导的电伪影,从而有助于在tDCS应用过程中同时进行脑电图(EEG)测量。在本研究中,我们使用在tDCS应用过程中测量的静息状态EEG数据,根据EEG功率谱密度(PSD)和脑网络指数(聚类系数和路径长度),研究了tDCS设备的神经调节效应。在五种不同条件(基线、假手术、假手术后、tDCS和tDCS后)中的每一种条件下,记录10名健康受试者在睁眼(EO)和闭眼(EC)状态下的静息状态脑电图数据。在tDCS条件下,以1.5mA的电流强度施加tDCS 12分钟,而在假手术条件下仅施加tDCS前30秒。计算与静息状态EEG最密切相关的α频带的EEG PSD和脑网络指数。在EO状态下,与基线条件下相比,在tDCS应用期间和之后,αPSD和网络指数都显著增加,但在EC状态下由于上限效应而没有增加。我们的结果证明了tDCS设备的神经调节作用,该设备不会产生显著的tDCS诱导的电伪影,从而允许同时测量脑电活动。我们期望我们的新型tDCS设备在探索tDCS对神经调控的影响方面具有实用性,更准确地使用在tDCS应用过程中同时测量的正在进行的EEG数据。
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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来源期刊
Biomedical Engineering Letters
Biomedical Engineering Letters ENGINEERING, BIOMEDICAL-
CiteScore
6.80
自引率
0.00%
发文量
34
期刊介绍: Biomedical Engineering Letters (BMEL) aims to present the innovative experimental science and technological development in the biomedical field as well as clinical application of new development. The article must contain original biomedical engineering content, defined as development, theoretical analysis, and evaluation/validation of a new technique. BMEL publishes the following types of papers: original articles, review articles, editorials, and letters to the editor. All the papers are reviewed in single-blind fashion.
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