TY - JOUR
T1 - Migration of motor pool activity in the spinal cord reflects body mechanics in human locomotion
AU - Cappellini, Germana
AU - Ivanenko, Yuri P.
AU - Dominici, Nadia
AU - Poppele, Richard E.
AU - Lacquaniti, Francesco
PY - 2010/12
Y1 - 2010/12
N2 - During the evolution of bipedal modes of locomotion, a sequential rostrocaudal activation of trunk muscles due to the undulatory body movements was replaced by more complex and discrete bursts of activity. Nevertheless, the capacity for segmental rhythmogenesis and the rostrocaudal propagation of spinal cord activity has been conserved. In humans, motoneurons of different muscles are arranged in columns, with a specific grouping of muscles at any given segmental level. The muscle patterns of locomotor activity and the biomechanics of the body center of mass have been studied extensively, but their interrelationship remains poorly understood. Here we mapped the electromyographic activity recorded from 30 bilateral leg muscles onto the spinal cord in approximate rostrocaudal locations of the motoneuron pools during walking and running in humans. We found that the rostrocaudal displacements of the center of bilateral motoneuron activity mirrored the changes in the energy due to the center-of-body mass motion. The results suggest that biomechanical mechanisms of locomotion, such as the inverted pendulum in walking and the pogo-stick bouncing in running, may be tightly correlated with specific modes of progression of motor pool activity rostrocaudally in the spinal cord.
AB - During the evolution of bipedal modes of locomotion, a sequential rostrocaudal activation of trunk muscles due to the undulatory body movements was replaced by more complex and discrete bursts of activity. Nevertheless, the capacity for segmental rhythmogenesis and the rostrocaudal propagation of spinal cord activity has been conserved. In humans, motoneurons of different muscles are arranged in columns, with a specific grouping of muscles at any given segmental level. The muscle patterns of locomotor activity and the biomechanics of the body center of mass have been studied extensively, but their interrelationship remains poorly understood. Here we mapped the electromyographic activity recorded from 30 bilateral leg muscles onto the spinal cord in approximate rostrocaudal locations of the motoneuron pools during walking and running in humans. We found that the rostrocaudal displacements of the center of bilateral motoneuron activity mirrored the changes in the energy due to the center-of-body mass motion. The results suggest that biomechanical mechanisms of locomotion, such as the inverted pendulum in walking and the pogo-stick bouncing in running, may be tightly correlated with specific modes of progression of motor pool activity rostrocaudally in the spinal cord.
UR - http://www.scopus.com/inward/record.url?scp=78650908733&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=78650908733&partnerID=8YFLogxK
U2 - 10.1152/jn.00318.2010
DO - 10.1152/jn.00318.2010
M3 - Article
C2 - 20881204
AN - SCOPUS:78650908733
SN - 0022-3077
VL - 104
SP - 3064
EP - 3073
JO - Journal of Neurophysiology
JF - Journal of Neurophysiology
IS - 6
ER -