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J Neurophysiol 101: 1705-1712, 2009. First published January 21, 2009; doi:10.1152/jn.91175.2008
0022-3077/09 $8.00
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Sudden Drop in Ground Support Produces Force-Related Unload Response in Human Overground Walking

Richard af Klint1, Jens Bo Nielsen2, Thomas Sinkjaer1 and Michael J. Grey2

1Center for Sensory-Motor Interaction, Department of Health Science and Technology, Aalborg University, Aalborg; and 2Department of Neuroscience and Pharmacology and Department of Exercise and Sport Sciences, The Panum Institute, University of Copenhagen, Copenhagen, Denmark

Submitted 29 October 2008; accepted in final form 19 January 2009

Humans maneuver easily over uneven terrain. To maintain smooth and efficient gait the motor system needs to adapt the locomotor output to the walking environment. In the present study we investigate the role of sensory feedback in adjusting the soleus muscle activity during overground walking in 19 healthy volunteers. Subjects walked unrestrained over a hydraulically actuated platform. On random trials the platform was accelerated downward at 0.8 g, unloading the plantar flexor muscles in midstance or late stance. The drop of the platform resulted in a significant depression of the soleus muscle activity of –17.9% (SD 2) and –21.4% (SD 2), with an onset latency of 49 ms (SD 1) and 45 ms (SD 1) in midstance and late stance, respectively. Input to the vestibular apparatus (i.e., the head acceleration) occurred at a latency 10.0 ms (SD 2.4) following the drop and ankle dorsiflexion velocity was decreased starting 22 ms (SD 15) after the drop. To investigate the role of length- and velocity-sensitive afferents on the depression in soleus muscle activity, the ankle rotation was arrested by using an ankle foot orthotic as the platform was dropped. Preventing the ankle movement did not significantly change the soleus depression in late stance [–18.2% (SD 15)], whereas the depression in midstance was removed [+4.9% (SD 13)]. It is concluded that force feedback from ankle extensors increases the locomotor output through positive feedback in late stance. In midstance the effect of force feedback was not observed, suggesting that spindle afferents may have a more significant effect on the output during this phase of the step cycle.


Address for reprint requests and other correspondence: R. af Klint, Center for Sensory-Motor Interaction, Fredrik Bajers Vej 7D, DK-9220 Aalborg, Denmark (E-mail: richardk{at}hst.aau.dk)




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N. J. Cronin, M. Ishikawa, R. af Klint, P. V. Komi, J. Avela, T. Sinkjaer, and M. Voigt
Effects of prolonged walking on neural and mechanical components of stretch responses in the human soleus muscle
J. Physiol., September 1, 2009; 587(17): 4339 - 4347.
[Abstract] [Full Text] [PDF]




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