Human Lumbosacral Spinal Cord Interprets Loading During Stepping
- 1 February 1997
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 77 (2) , 797-811
- https://doi.org/10.1152/jn.1997.77.2.797
Abstract
Harkema, Susan J., Seanna L. Hurley, Uday K. Patel, Philip S. Requejo, Bruce H. Dobkin, and V. Reggie Edgerton. Human lumbosacral spinal cord interprets loading during stepping. J. Neurophysiol. 77: 797–811, 1997. Studies suggest that the human lumbosacral spinal cord can generate steplike oscillating electromyographic (EMG) patterns, but it remains unclear to what degree these efferent patterns depend on the phasic peripheral sensory information associated with bilateral limb movements and loading. We examined the role of sensory information related to lower-extremity weight bearing in modulating the efferent motor patterns of spinal-cord-injured (SCI) subjects during manually assisted stepping on a treadmill. Four nonambulatory subjects, each with a chronic thoracic spinal cord injury, and two nondisabled subjects were studied. The level of loading, EMG patterns, and kinematics of the lower limbs were studied during manually assisted or unassisted stepping on a treadmill with body weight support. The relationships among lumbosacral motor pool activity [soleus (SOL), medial gastrocnemius (MG), and tibialis anterior (TA)], limb load, muscle-tendon length, and velocity of muscle-tendon length change were examined. The EMG mean amplitude of the SOL, MG, and TA was directly related to the peak load per step on the lower limb during locomotion. The effects on the EMG amplitude were qualitatively similar in subjects with normal, partial, or no detectable supraspinal input. Responses were most consistent in the SOL and MG at load levels of <50% of a subject's body weight. The modulation of the EMG amplitude from the SOL and MG, both across steps and within a step, was more closely associated with limb peak load than muscle-tendon stretch or the velocity of muscle-tendon stretch. Thus stretch reflexes were not the sole source of the phasic EMG activity in flexors and extensors during manually assisted stepping in SCI subjects. The EMG amplitude within a step was highly dependent on the phase of the step cycle regardless of level of load. These data suggest that level of loading on the lower limbs provides cues that enable the human lumbosacral spinal cord to modulate efferent output in a manner that may facilitate the generation of stepping. These data provide a rationale for gait rehabilitation strategies that utilize the level of load-bearing stepping to enhance the locomotor capability of SCI subjects.Keywords
This publication has 42 references indexed in Scilit:
- Reflex responses in active muscles elicited by stimulation of low-threshold afferents from the human footJournal of Neurophysiology, 1992
- Task‐dependent changes in the responses to low‐threshold cutaneous afferent volleys in the human lower limb.The Journal of Physiology, 1991
- Late flexion reflex in paraplegic patients. Evidence for a spinal stepping generatorBrain Research Bulletin, 1989
- MYOCLONUS IN A PATIENT WITH SPINAL CORD TRANSECTIONBrain, 1988
- Recovery of locomotion after chronic spinalization in the adult catBrain Research, 1987
- The distal hindlimb musculature of the catExperimental Brain Research, 1985
- Corrective reactions to stumbling in man: neuronal co‐ordination of bilateral leg muscle activity during gait.The Journal of Physiology, 1984
- Peripheral control of the cat's step cycle I. Phase dependent effects of ramp‐movements of the hip during “fictive locomotion”Acta Physiologica Scandinavica, 1981
- Peripheral control of the spinal pattern generators for locomotion in catBrain Research, 1978
- Phasic gain control of the transmission in cutaneous reflex pathways to motoneurones during ‘fictive’ locomotionBrain Research, 1978