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Doroodchi, A.

Publications and source records attributed to Doroodchi, A..

2 recordsLinked to original sources

Foot Sole Cutaneous Somatosensory Modulation Based on Balance Demands

Postural complexity may shape how the nervous system processes plantar cutaneous input. We tested whether somatosensory evoked potentials (SEPs) elicited by foot-sole stimulation scale with balance demands, hypothesizing larger responses for more complex tasks. Thirty-one healthy adults performed standing, straight-step, and diagonal-step conditions while receiving brief electrical stimulation to the stance foot sole; SEPs (P50, N90, peak-to-peak) were analyzed at Cz using pooled and order-specific approaches. In the pooled analysis, peak-to-peak SEP amplitude was greater for both stepping conditions than standing (Standing vs. Straight, P = 0.041; Standing vs. Diagonal, P = 0.026). Order-specific analysis showed an early amplification: the first SEP (0.5 s after the warning cue) was larger for diagonal than straight stepping (peak-to-peak, P = 0.009; N90, P = 0.027). Source localization at N90 revealed greater activation during stepping than standing in paracentral gyrus & sulcus, inferior parietal angular gyrus, and superior parietal gyrus, consistent with enhanced sensorimotor processing under higher postural demands. Moreover, right paracentral gyrus & sulcus activity was higher for diagonal vs. straight stepping for the first and fourth SEPs. Together, these findings indicate that increasing balance demands up-weight plantar afferent processing and recruit contralateral sensorimotor/parietal regions, particularly early in preparation, supporting the view that cortical sensory gain is tuned to postural complexity.

neuroscience↗

Preparatory Cortical Modulations for Stepping Tasks with Varying Postural Complexity

We examined whether preparatory cortical activity indexed by the contingent negative variation (CNV) scales with postural complexity during step initiation. Participants performed straight and diagonal stepping in a Warning-Go paradigm while EEG was recorded; CNV epochs spanned the 2s fore period and were summarized into eight 0.25-s bins for electrode and eLORETA source-level analyses using linear mixed-effects models (n=31). Diagonal stepping produced greater early CNV negativity at the scalp (bin 1: C1, CP3, CP1, P1, FC4; bin 2: F1, F3, FC1, Fz, F2, F4, FC2, FCz), with no electrodes favoring straight stepping. Source analysis showed stronger engagement for diagonal stepping in bins 1-3 (0-0.75 s) across fronto-parietal sensorimotor regions, including paracentral, transverse frontopolar, superior frontal (gyrus/sulcus), supramarginal, superior parietal, intraparietal, and precentral sulcus; no regions were greater for straight stepping. These effects concentrated in the early CNV suggest enhanced anticipatory selective attention and sensory up-weighting under higher postural demands, providing a richer state estimate for scaling anticipatory postural adjustments.

neuroscience↗