Stance-phase force on the opposite limb dictates swing-phase afferent presynaptic inhibition during locomotion

Author:

Hayes Heather Brant1,Chang Young-Hui12,Hochman Shawn13

Affiliation:

1. Department of Biomedical Engineering, Georgia Institute of Technology and Emory University;

2. School of Applied Physiology, Georgia Institute of Technology; and

3. Department of Physiology, Emory University School of Medicine, Atlanta, Georgia

Abstract

Presynaptic inhibition is a powerful mechanism for selectively and dynamically gating sensory inputs entering the spinal cord. We investigated how hindlimb mechanics influence presynaptic inhibition during locomotion using pioneering approaches in an in vitro spinal cord–hindlimb preparation. We recorded lumbar dorsal root potentials to measure primary afferent depolarization-mediated presynaptic inhibition and compared their dependence on hindlimb endpoint forces, motor output, and joint kinematics. We found that stance-phase force on the opposite limb, particularly at toe contact, strongly influenced the magnitude and timing of afferent presynaptic inhibition in the swinging limb. Presynaptic inhibition increased in proportion to opposite limb force, as well as locomotor frequency. This form of presynaptic inhibition binds the sensorimotor states of the two limbs, adjusting sensory inflow to the swing limb based on forces generated by the stance limb. Functionally, it may serve to adjust swing-phase sensory transmission based on locomotor task, speed, and step-to-step environmental perturbations.

Publisher

American Physiological Society

Subject

Physiology,General Neuroscience

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