Steps against the burden of Parkinson's disease (StepuP): Protocol of a randomized controlled trial elucidating the biomechanical and neurophysiological mechanisms of a speed dependent treadmill training intervention
van Leeuwen, M.; Welzel, J.; D'Ascanio, I.; Lang, C.; Vinod, V.; Gorissen, P.; Geritz, J.; Hansen, C.; Gazit, E.; Siman Tov, S.; Prusak, R.; Casadei, I.; Contri, A.; Tampellini, F.; Pellicciari, L.; Lopane, G.; Calandra-Buonaura, G.; Palmerini, L.; Zahid, N.; Ratanapongleka, M.; Razee, H.; von Wegner, F.; van Wijk, B.; Bruijn, S. M.; Ravi, D. K.; Okubo, Y.; Singh, N. B.; Brodie, M.; La Porta, F.; Hausdorff, J. M.; Maetzler, W.; van Dieen, J. H.
Show abstract
ObjectiveParkinsons disease can impair gait and stability, leading to reduced independence and increased fall risk. While speed dependent treadmill training (SDTT) is clinically effective, the specific biomechanical and neurophysiological mechanisms driving these improvements remain unclear. The "StepuP" multicenter randomized controlled trial aims to elucidate these mechanisms and determine whether training enriched with virtual reality or mechanical perturbations (SDTT+) enhances gait efficacy and transfer to daily life. MethodsWe will recruit 126 individuals with Parkinsons disease across four clinical sites and 21 healthy older adults as a reference group. Participants will be randomized to receive either standard SDTT or SDTT+ for 12 sessions. To capture the trajectory of recovery and retention, assessments will occur at three distinct timepoints: baseline, post-intervention, and a 12-week follow-up, each assessment including synchronized 64-channel electroencephalography (EEG), electromyography (EMG), and 3D kinematics. This multimodal setup allows for the quantification of cortical beta-band activity, corticomuscular coherence, and stability-related foot placement control. Furthermore, we will assess participants satisfaction, usability, and engagement through questionnaires and interviews to understand individual adherence and barriers to training. SignificanceThe primary clinical endpoint is comfortable overground walking speed. We hypothesize that gait improvements are mediated by improved stability-related foot placement and cortical sensorimotor integration. By correlating lab-based mechanistic changes with real-world mobility patterns and participant experiences, this study seeks to identify specific pathophysiological mechanisms engaged during the treadmill training. These insights will help distinguish responders from non-responders, facilitating the development of personalized, acceptable, and effective rehabilitation strategies.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Optimized hip-knee-ankle exoskeleton assistance at a range of walking speeds 96%
- Using force data to self-pace an instrumented treadmill and measure self-selected walking speed 95%
- Technology-aided assessment of functionally relevant sensorimotor impairments in arm and hand of post-stroke individuals 95%
Similar papers in this journal
- Connecting real-world digital mobility assessment to clinical outcomes for regulatory and clinical endorsement – the Mobilise-D study protocol 96%
- Novel methodology for assessing total recovery time in response to unexpected perturbations while walking 96%
- Consensus based framework for digital mobility monitoring 96%
Similar papers in this journal
- Optimising activity and diet compositions for dementia prevention: Protocol for the ACTIVate prospective longitudinal cohort study 93%
- Cohort Profile: Baseline characteristics and design of the McMaster Monitoring My Mobility (MacM3) Study, a prospective digital mobility cohort of community-dwelling older Canadians from Southern Ontario 92%
- HEART rate variability biofeedback for LOng Covid symptoms (HEARTLOC): protocol for a feasibility study 92%
Similar papers in this journal
- Does increased gait variability improve stability when faced with an expected balance perturbation during treadmill walking? 95%
- Effects of spinal stimulation and short-burst treadmill training on gait biomechanics in children with cerebral palsy 95%
- Dynamic evaluation of spine kinematics in individuals with Parkinson’s disease and freezing of gait 95%
Similar papers in this journal
- Gait adaptation to asymmetric hip stiffness applied by a robotic exoskeleton 96%
- Continuous Monitoring of Head Turns: Compliance, Kinematics, and Reliability of Wearable Sensing 96%
- Inertial sensor-based centripetal acceleration as a correlate for lateral margin of stability during walking and turning 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.