4.4 Article

Muscle-specific modulation of vestibular reflexes with increased locomotor velocity and cadence

期刊

JOURNAL OF NEUROPHYSIOLOGY
卷 110, 期 1, 页码 86-94

出版社

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/jn.00843.2012

关键词

vestibular signal; locomotion; stochastic stimulus; reflex reversal

资金

  1. Natural Sciences and Engineering Research Council of Canada
  2. Canadian Institutes of Health Research-Canadian Chiropractic Research Foundation
  3. Michael Smith Foundation for Health Research

向作者/读者索取更多资源

Vestibular information is one of the many sensory signals used to stabilize the body during locomotion. When locomotor velocity increases, the influence of these signals appears to wane. It is unclear whether vestibular signals are globally attenuated with velocity or are influenced by factors such as whether a muscle is contributing to balance control. Here we investigate how vestibular sensory signals influence muscles of the leg during locomotion and what causes their attenuation with increasing locomotor velocity. We hypothesized that 1) vestibular signals influence the activity of all muscles engaged in the maintenance of medio-lateral stability during locomotion and 2) increases in both cadence and velocity would be associated with attenuation of these signals. We used a stochastic vestibular stimulus and recorded electromyographic signals from muscles of the ankle, knee, and hip. Participants walked using two cadences (52 and 78 steps/min) and two walking velocities (0.4 and 0.8 m/s). We observed phase-dependent modulation of vestibular influence over ongoing muscle activity in all recorded muscles. Within a stride, reversals of the muscle responses were observed in the biceps femoris, tibialis anterior, and rectus femoris. Vestibular-muscle coupling decreases with increases in both cadence and walking velocity. These results show that the observed vestibular suppression is muscle-and phase dependent. We suggest that the phase- and muscle-specific influence of vestibular signals on locomotor activity is organized according to each muscle's functional role in body stabilization during locomotion.

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