ArticleThe Journal of neuroscience : the official journal of the Society for Neuroscience2024
A "Conscious" Loss of Balance: Directing Attention to Movement Can Impair the Cortical Response to Postural Perturbations.
Article in The Journal of neuroscience : the official journal of the Society for Neuroscience, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- Cortical response to balance perturbation is more sensitive in modern dancers than nondancers during biomechanically similar balance recovery.Journal of neurophysiology · 2026Article
- Cortical activity during preparation and execution of balance recovery behavior in people after mild traumatic brain injury: A preliminary investigation.medRxiv : the preprint server for health sciences · 2026Article
- The cortical vestibular system: insights from electroencephalography.Current opinion in neurology · 2026Review
- Influence of posture on prepulse inhibition and its link to postural control in healthy subjects.Scientific reports · 2025Article
- Cortical response to balance perturbation is more sensitive in modern dancers than nondancers during biomechanically similar balance recovery.bioRxiv : the preprint server for biology · 2025Article
- Excellent test-retest reliability of perturbation-evoked cortical responses supports feasibility of the balance N1 as a clinical biomarker.Journal of neurophysiology · 2025Article
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5 authors.
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Abstract
"Trying too hard" can interfere with skilled movement, such as sports and music playing. Postural control can similarly suffer when conscious attention is directed toward it ("conscious movement processing"; CMP). However, the neural mechanisms through which CMP influences balance remain poorly understood. We explored the effects of CMP on electroencephalographic (EEG) perturbation-evoked cortical responses and subsequent balance performance. Twenty healthy young adults (age = 25.1 ± 5 years; 10 males and 10 females) stood on a force plate-embedded moveable platform while mobile EEG was recorded. Participants completed two blocks of 50 discrete perturbations, containing an even mix of slower (186 mm/s peak velocity) and faster (225 mm/s peak velocity) perturbations. One block was performed under conditions of CMP (i.e., instructions to consciously control balance), while the other was performed under "Control" conditions with no additional instructions. For both slow and fast perturbations, CMP resulted in significantly smaller cortical N1 signals (a perturbation-evoked potential localized to the supplementary motor area) and lower sensorimotor beta EEG activity 200-400 ms postperturbation. Significantly greater peak velocities of the center of pressure (i.e., greater postural instability) were also observed during the CMP condition. Our findings provide the first evidence that disruptions to postural control during CMP may be a consequence of insufficient cortical activation relevant for balance (i.e., insufficient cortical N1 responses followed by enhanced beta suppression). We propose that conscious attempts to minimize postural instability through CMP acts as a cognitive dual-task that dampens the sensitivity of the sensorimotor system for future losses of balance.
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