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Updated: Jul 12, 2026

Vagus Nerve Stimulation As an Adjunctive Neurostimulation Tool in Treatment-resistant Depression
Published on: January 7, 2019
Transcutaneous vagus nerve stimulation reduces total striatal GABA+ content, increases DLPFC Glu content, and
Kana Matsumura1, Hiroyuki Matsuta2,3, Ryushin Kawasoe1,4
1Graduate School of Welfare and Health Science, Oita University, Oita, Japan.
Objectives:
Transcutaneous vagus nerve stimulation (tVNS) has emerged as a promising non-invasive technique for modulating neuroplasticity. Previous studies have suggested that changes in regional brain GABA+ signaling contribute to these effects, but empirical neurophysiological evidence remains limited.
Materials And Methods:
We investigated the neurophysiological and behavioral effects of tVNS (200-μs pulses at 20 Hz, alternating 30 s ON-1 s OFF cycles, 30 min total duration) in healthy adults using two experimental paradigms. In Experiment 1, GABA+ and Glutamate (Glu) levels were measured in the left striatum (STR), dorsolateral prefrontal cortex (DLPFC), and sensorimotor cortex (SM) of 34 participants by proton magnetic resonance spectroscopy (1H-MRS), before and after ipsilateral tVNS. In Experiment 2, 27 participants performed a right-hand force-control motor learning task before, during, and after tVNS.
Results:
Administration of tVNS significantly reduced GABA+ levels in the left STR (p < 0.05), increased Glu levels in the DLPFC (p < 0.05), and significantly improved motor task performance compared to the sham group at 10 min after stimulus onset (p < 0.05).
Conclusion:
tVNS (1) reduced striatal GABA+ levels and increased DLPFC Glu in healthy adults, and (2) facilitated early-phase motor learning. These findings support the use of tVNS as a noninvasive intervention that enhances motor learning in neurorehabilitation and the treatment of motor disorders.
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