Search bioRxiv⌕ Search

Biology subjects

Bacek, T.

Publications and source records attributed to Bacek, T..

2 recordsLinked to original sources

Gait Adaptations in Step Length and Push-off Force during Walking with Functional Asymmetry

Human walking is remarkably adaptable, allowing individuals to maintain efficiency and stability across diverse conditions. This study investigates how healthy young adults adapt step length and push-off force to varying speeds and cadences under functional asymmetry induced by a unilateral knee constraint, simulating hemiparetic gait. A dataset of 19 participants walking across 30 conditions was used to examine these adaptations in both absolute terms and symmetry metrics. Results reveal that functional asymmetry disproportionately impacts propulsion, with constrained-leg force decreasing significantly at higher speeds. Step length symmetry remains stable, suggesting a prioritisation of spatial over kinetic symmetry, likely to optimise walking energetics and maintain anterior-posterior balance. Statistical models demonstrated good within-dataset performance but limited generalisability in cross-dataset predictions, where differences in population cohorts and experimental designs reduced accuracy. These findings provide insights into the mechanisms driving gait adaptations and highlight critical limitations in applying statistical models to patient populations, underscoring the importance of representative datasets and caution when extrapolating findings across populations.

biophysics↗

Gait Adaptations Under Functional Asymmetry: Exploring the Role of Step Width, Step Length, and CoM in Lateral Stability

Bipedal gait is inherently unstable, requiring a complex interplay between foot placement and centre of mass (CoM) movement to maintain balance. While various factors are known to impact walking balance, few studies have explored the specific effects of functional asymmetry on lateral stability. This study investigates how step length, step width, and CoM adaptations impact lateral gait stability in healthy young adults walking with and without a functional asymmetry induced by fully extending the left knee. The results show that step length remains unaffected by functional asymmetry regardless of speed, while step width increases under the constraint. This adjustment increases the base of support; however, the concurrent increase in lateral CoM movement reduces overall lateral stability. These findings offer valuable insights into fundamental gait adaptation and stability mechanisms, with potential implications for designing rehabilitation strategies for individuals with gait asymmetry.

biophysics↗