The regulation of limb stiffness in the context of locomotor tasks.

Adv Exp Med Biol

School of Applied Physiology and Department of Biomedical Engineering, Georgia Institute of Technology, 555 14th Streeet NW, 30332-0356, Atlanta, GA, USA,

Published: April 2015

Locomotion on ramped surfaces requires modulation of both pattern generating circuits and limb stiffness. In order to meet the mechanical demands of locomotion under these conditions, muscular activation patterns must correspond to the appropriate functions, whether the muscles are serving as force generators or brakes. Limb stiffness is a critical mechanical property that determines how the body interacts with the environment, and is regulated by both intrinsic and neural mechanisms. We have recently investigated how pattern generation, stiffness and proprioceptive feedback are modulated in a task specific way using the decerebrate cat preparation. Our results confirm previous research using intact animals that during level and upslope walking, hip and ankle extensors are recruited for propulsion during stance. During downslope walking, hip extensors are inhibited and hip flexors are recruited during stance to provide the needed braking action. Our new data further show that endpoint stiffness of the limb is correspondingly reduced for walking down a slope, and that the reduction in stiffness is likely due to an increase in inhibitory force feedback. Our results further suggest that a body orientation signal derived from vestibular and neck proprioceptive information is responsible for the required muscular activation patterns as well as a reduction in limb stiffness. This increased compliance is consistent with the function of the distal limb to cushion the impact during the braking action of the antigravity musculature.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9806734PMC
http://dx.doi.org/10.1007/978-1-4939-1338-1_4DOI Listing

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