ArticleScientific reports2024
Selective engagement of long-latency reflexes in postural control through wobble board training.
Article in Scientific reports, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Wobble-Board Dynamics Identify Individual Signatures of Balance Control for Clinical Assessment.Annals of biomedical engineering · 2026Article
- Wobble-board dynamics as a scalable assay of long-latency reflex function in aging.GeroScience · 2026Article
- Wobble-board instability re-orthogonalizes postural geometry in older adults through exogenous constraint.GeroScience · 2026Article
- The equilibrium point hypothesis revisited: why threshold control does not explain human movement.Experimental brain research · 2026Review
- Wobble board instability enhances proactive postural control.Chaos, solitons, and fractals · 2025Article
- Geometric principles of wobble board design for balance training and rehabilitation.Scientific reports · 2025Article
- A multimodal biomechanical and eye-tracking dataset of suprapostural coordination in healthy young adults.Scientific data · 2025Article
- Wobble Board Instability Enhances Compensatory CoP Responses to CoM Movement Across Timescales.Sensors (Basel, Switzerland) · 2025Article
- Angular distribution of fractal temporal correlations supports adaptive responses to wobble board instability.Journal of the Royal Society, Interface · 2025Article
- The neuromechanics of the soleus for fall prevention in aging.Frontiers in physiology · 2025Review
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Authors and funding
6 authors.
Funding
Abstract
Long-latency reflexes (LLRs) are critical precursors to intricate postural coordination of muscular adaptations that sustain equilibrium following abrupt disturbances. Both disturbances and adaptive responses reflect excursions of postural control from quiescent Gaussian stability under a narrow bell curve, excursions beyond Gaussianity unfolding at many timescales. LLRs slow with age, accentuating the risk of falls and undermining dexterity, particularly in settings with concurrent additional tasks. We investigated whether the wobble board could cultivate the engagement of LLRs selectively in healthy young participants executing a suprapostural Trail Making Task (TMT). A concurrent additional-task demand constituted visual precision predominantly along the anteroposterior (AP) axis and mechanical instability mainly along the mediolateral (ML) axis. We scrutinized planar center-of-pressure (CoP) trajectories to quantify postural non-Gaussianity across various temporal scales. Wobble board increased engagement of LLRs and decreased engagement of compensatory postural adjustments (CPAs), indicated by the peak in non-Gaussianity of CoP planar displacements over LLR-specific timescales (50-100 ms) and non-Gaussianity of CoP planar displacements progressively diminishing over CPA-specific timescales ([Formula: see text] ms). Engagement with TMT did not show any noticeable influence on non-Gaussian postural sway patterns. Despite aligning the unstable axis of the wobble board with participants' ML axis, thus rendering posture more unstable along the ML axis, the wobble board increased engagement of LLRs significantly more along the AP axis and reduced engagement of CPAs significantly more along the ML axis. These findings offer initial mechanistic insights into how wobble boards may bolster balance and potentially reduce the occurrence of falls by catalyzing the engagement of LLRs selectively.
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