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Effect of Applying tDCS by Inactive Electrode Placement to Cognitive Response on Stroke Patients

경피두개직류자극 적용 시 비활성 전극의 위치가 뇌졸중 환자의 인지반응에 미치는 영향

  • Hwang, Ki-Kyeong (Department of Physical Therapy, Graduate School, Kwangju Women's University) ;
  • Lee, Jeong-Woo (Department of Physical Therapy, Kwangju Women's University)
  • 황기경 (광주여자대학교 일반대학원 물리치료학과) ;
  • 이정우 (광주여자대학교 물리치료학과)
  • Received : 2013.05.10
  • Accepted : 2013.06.17
  • Published : 2013.06.30

Abstract

Purpose : This study was to identify the effect of cognitive reaction following inactive electrode placement when applying anodal transcranial direct current stimulation over the primary motor cortex. Methods : For this study a total of 28 stroke patients participated. Before applying transcranial direct current stimulation, cognitive reaction was measured (P300 of event related potential, cognitive reaction time), and subjects were randomly assigned to two group. Transcranial direct current stimulation was applied to the scalp with an intensity of $0.04mA/cm^2$ for 15 minutes. All subjects were given an anode transcranial direct current stimulation over the primary motor area and inactive electrodes over the deltoid muscle (group I) and supra-orbital area (group II). Cognitive reactions were measured after applying transcranial direct current stimulation. Results : For this study a total of 28 stroke patients participated. Before applying transcranial direct current stimulation, cognitive reaction was measured (P300 of event related potential, cognitive reaction time), and subjects were randomly assigned to two group. Transcranial direct current stimulation was applied to the scalp with an intensity of $0.04mA/cm^2$ for 15 minutes. All subjects were given an anode transcranial direct current stimulation over the primary motor area and inactive electrodes over the deltoid muscle (group I) and supra-orbital area (group II). Cognitive reactions were measured after applying transcranial direct current stimulation. Conclusion : Thus transcranial direct current stimulation on the primary motor area may help cognitive reaction regardless of inactive electrode placement.

Keywords

References

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