This study will determine whether transcranial direct current stimulation (tDCS) can be used alter the amplitude of spontaneous neural activity, and thereby modulate cognitive function in healthy adults
An emerging neurological tool, called transcranial Direct Current Stimulation (tDCS), has recently been shown to safely and effectively enhance cognition in healthy individuals, as well as reduce key symptomatology in disorders such as stroke and depression, with only negligible side effects. tDCS delivers low-amplitude current to the scalp using small electrodes and part of this current passes through the skull and modulates neural activity in the underlying brain region. How this tiny amount of electric current acts to improve cognitive function and reduce symptoms (e.g., motor impairments in stroke patients with a lesion in motor brain areas) is currently unknown, although many investigators across the world are now working on this problem. Magnetoencephalography (MEG) offers a unique view of neural function, as it can delineate changes in active brain regions with excellent temporal resolution (\< 1 ms) and high spatial accuracy (2-3 mm). MEG non-invasively measures the magnetic fields that emanate from active neocortical cells. The potential of the MEG technique to precisely monitor the neural effects of tDCS shows extreme promise, but to date the method has been rarely utilized in this area. Under this protocol, Modulation of Spontaneous Cortical Activity by tDCS: BRAIN Initiative I, approximately 124 participants will provide written informed consent, undergo cognitive and behavioral testing and a structural MRI during a single visit, and then return several weeks later (2-4 weeks) to complete a short tDCS session followed by a MEG recording (i.e., after tDCS). Most participants will return for two more visits, each separated by 2-4 weeks, that include a tDCS session followed by a MEG recording (i.e., 4 total visits). The three tDCS-MEG visits will be identical except that the nature of the stimulation (e.g., location, amplitude, direction/polarity) will be different.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
BASIC_SCIENCE
Masking
DOUBLE
Enrollment
133
20 minutes duration using high-definition system with center-surround configuration
University of Nebraska Medical Center
Omaha, Nebraska, United States
Behavioral Performance (Accuracy) on Cognitive Tests of Perceptual Processing
Do participants perform better in terms of accuracy following tDCS on behavioral measures of perceptual processing.
Time frame: During the 90 minutes following stimulation
Behavioral Performance (Reaction Time) on Cognitive Tests of Perceptual Processing
Do participants perform better in terms of reaction time following tDCS on behavioral measures of perceptual processing.
Time frame: During the 90 minutes following stimulation
The Power of Spontaneous Alpha Activity as Quantified by MEG Imaging
Does spontaneous alpha (9-13 Hz) power, as measured by MEG, get stronger following tDCS. Spontaneous activity refers to the level of background neural activity and is typically divided into frequency bands (e.g., alpha, gamma) that reflect the number of cycles per second. The outcome measure unit is nano-amperes square (nA\^2) since source-resolved MEG measures reflect electric current strength and not voltage units as in electroencephalography (EEG). The square is necessary since we examined power, which is the square of amplitude in the frequency domain. The unit is also commonly expressed as nAm\^2 since the strength of the electric current is over a defined length.
Time frame: During the 90 minutes following stimulation
The Power of Oscillatory Alpha Activity as Quantified by MEG Imaging
Does oscillatory alpha neural activity, as measured by MEG, get stronger following tDCS. Oscillatory activity refers band-limited increases or decreases in the power of neural activity, relative to baseline, in response to a stimulus.
Time frame: During the 90 minutes following stimulation
The Power of Spontaneous Gamma Activity as Quantified by MEG Imaging
Does spontaneous gamma (45-80 Hz) power, as measured by MEG, get stronger following tDCS. Spontaneous activity refers to the level of background neural activity and is typically divided into frequency bands (e.g., alpha, gamma) that reflect the number of cycles per second. The outcome measure unit is nano-amperes square (nA\^2) since source-resolved MEG measures reflect electric current strength and not voltage units as in electroencephalography (EEG). The square is necessary since we examined power, which is the square of amplitude in the frequency domain. The unit is also commonly expressed as nAm\^2 since the strength of the electric current is over a defined length.
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Time frame: During the 90 minutes following stimulation
The Power of Oscillatory Gamma Activity as Quantified by MEG Imaging
Does oscillatory gamma neural activity, as measured by MEG, get stronger following tDCS. Oscillatory activity refers band-limited increases or decreases in the power of neural activity, relative to baseline, in response to a stimulus.
Time frame: During the 90 minutes following stimulation