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Fumuro, T.

Publications and source records attributed to Fumuro, T..

2 recordsLinked to original sources

Human frontal eye field and eyelid motor area revisited with electrical cortical stimulation and electrode co-registration

We investigated the anatomical localization of the frontal eye field (FEF) and its relationship to the eyelid motor area (EMA) and precentral motor cortex. We performed functional mapping using electrical cortical stimulation (ECS) and correlated electrode position by non-linear co-registration techniques using postoperative MRI. We studied 22 patients who underwent chronic implantation of subdural electrodes for epilepsy surgery. Eye movements were elicited at 52 electrodes overall. The majority of the movements were conjugated, saccadic eye deviation contralateral to the side of ECS. Head turning and non-saccadic eye deviation more frequently occurred in the vicinity of the precentral sulcus. Anatomically, FEF was located at Brodmanns area 6 in the most-caudal region of the middle frontal gyrus and in the adjacent part of the superior frontal sulcus and precentral sulcus. Functionally, FEF was situated at the level of the hand motor area, more dorsal than was described in Penfields motor homunculus. The FEF is situated anteriorly from the precentral motor cortex. The EMA was situated within the precentral motor cortex, partially overlapping with but distinctly ventral and caudal to FEF, and dorsal to the lower face motor area. A standardized map of the FEF and precentral motor homunculus is provided as a reference for human system neuroscience research.

neuroscience↗

Transcutaneous vagus nerve stimulation reduces total striatal GABA content and facilitates early-phase motor learning

BackgroundTranscutaneous 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. MethodsWe investigated the neurophysiological and behavioral effects of tVNS (200-s 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 levels were measured in the left striatum (STR), dorsolateral prefrontal cortex (DLPFC), and sensorimotor cortex (SM) of 34 participants by magnetic resonance spectroscopy (MRS) before and after ipsilateral tVNS. In Experiment 2, 28 participants performed a right-hand force-control motor learning task before, during, and after tVNS. ResultsAdministration of tVNS significantly reduced GABA levels in the left STR compared to sham stimulation (p < 0.05), and also significantly improved motor task performance compared to the sham group at 10 minutes after stimulus onset (p < 0.05) ConclusionTranscutaneous VNS may facilitate early-phase motor learning by reducing striatal GABA levels and consequently inducing corticobasal circuit disinhibition. These findings support tVNS as a potential noninvasive intervention to enhance motor learning for neurorehabilitation and motor disorder treatment.

neuroscience↗