Effect of Brain-Computer Interface-Controlled Ankle Robot Training on Post-Stroke Motor Rehabilitation and Resting QEEG Neuroplasticity: A Randomized Controlled Trial
Влияние тренировки с управляемым интерфейсом «мозг‑компьютер» роботизированного тренажёра для голеностопа на восстановление моторики после инсульта и нейропластичность в покое по qEEG: рандомизированное контролируемое исследование
2026-02-12
SCID: 54.1/7qjz4ujb
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BCI-controlled ankle robotFugl-Meyer Assessment-Lower Extremity (FMA-LE)pairwise-derived Brain Symmetry Index (pdBSI)post-stroke lower-limb rehabilitationquantitative EEG (qEEG)
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Abstract (AI)
Background. Persistent post-stroke ankle impairment hinders functional recovery. Brain-computer interface (BCI)-controlled ankle robot show rehabilitation potential, but their efficacy and underlying neuroplasticity remain unclear. Objective. To assess BCI-controlled ankle robot training on post-stroke lower-limb motor recovery and neuroplasticity using quantitative EEG (qEEG). Methods. Thirty-two stroke patients were randomized to BCI (n = 16, 40-minute BCI-robot training) or control (n = 16, 40-minute ankle-robot training) groups, receiving 5 sessions/week for 2 weeks. Outcomes included Fugl-Meyer Assessment-Lower Extremity (FMA-LE), Berg Balance Scale (BBS), Functional Ambulatory Category (FAC), Modified Ashworth Scale (MAS), active range of motion (AROM), and muscle strength. QEEG assessed the relative power of the delta (rδ), theta (rθ), alpha (rα), beta (rβ) bands, spectral power ratios, pairwise-derived Brain Symmetry Index (pdBSI), and functional connectivity. Results. Both groups showed significant within-group improvements in dorsiflexion AROM, dorsiflexor strength, FMA-LE, BBS, and FAC ( P < .05). The BCI group demonstrated significantly greater FMA-LE improvement than controls (∆FMA-LE, P = .007) and reduced calf spasticity (MAS; P = .038). QEEG analysis in the BCI group revealed decreased rδ ( P = .005), increased rα ( P = .017), reduced DAR and DTABR ( P < .05), reduced interhemispheric asymmetry (pdBSI-δ; P = .018), and enhanced Cz-parietal connectivity in α and β bands ( P < .05). Conclusion. BCI-controlled ankle robot training significantly improved lower-limb motor function and reduced spasticity post-stroke. Associated neurophysiological changes, characterized by reduced slow-wave power and asymmetry, increased alpha power, and functional connectivity, indicated beneficial neuroplastic reorganization. Clinical trial registration number: China Clinical Trail Registry (ChiCTR2300074381; URL: http://www.chictr.org.cn ).
Key Findings
1
BCI training reduced calf spasticity more than control (Modified Ashworth Scale; P = .038).
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BCI training reduced interhemispheric asymmetry (pdBSI-δ; P = .018) and enhanced Cz-parietal functional connectivity in alpha and beta bands (P < .05), indicating beneficial neuroplastic reorganization.
3
BCI-controlled ankle robot training produced significantly greater improvement in lower-limb motor function (FMA-LE) than conventional ankle-robot training (∆FMA-LE, P = .007).
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Both BCI and control groups showed within-group improvements in dorsiflexion AROM, dorsiflexor strength, FMA-LE, BBS, and FAC (P < .05).
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QEEG changes after BCI training included decreased relative delta power (rδ, P = .005), increased relative alpha power (rα, P = .017), and reduced DAR and DTABR (P < .05).
Research Object
Brain-computer interface-controlled ankle robot training in post-stroke patients
Research Subject
Effects on lower-limb motor rehabilitation outcomes (FMA-LE, BBS, FAC, AROM, muscle strength, spasticity) and associated resting qEEG neuroplasticity markers (relative band power, spectral ratios, pdBSI, and functional connectivity)
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2026-02-12
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