Ratio of Shear to Load Ground-Reaction Force May Underlie the Directional Tuning of the Automatic Postural Response to Rotation and Translation
- 1 August 2004
- journal article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 92 (2) , 808-823
- https://doi.org/10.1152/jn.00773.2003
Abstract
This study sought to identify the sensory signals that encode perturbation direction rapidly enough to shape the directional tuning of the automatic postural response. We compared reactions to 16 directions of pitch and roll rotation and 16 directions of linear translation in the horizontal plane in freely standing cats. Rotations and translations that displaced the center of mass in the same direction relative to the feet evoked similar patterns of muscle activity and active ground-reaction force, suggesting the presence of a single, robust postural strategy for stabilizing the center of mass in both rotation and translation. Therefore we postulated there should be a common sensory input that encodes the direction of the perturbation and leads to the directional tuning of the early electromyographic burst in the postural response. We compared the mechanical changes induced by rotations and translations prior to the active, postural response. The only consistent feature common to the full range of rotation and translation directions was the initial change in ground-reaction force angle. Other variables including joint angles, ground-reaction force magnitudes, center of pressure, and center of mass in space showed opposite or nonsignificant changes for rotation and translation. Change in force angle at the paw reflects the ratio of loading force to slip force, analogous to slips during finger grip tasks. We propose that cutaneous sensors in the foot soles detect change in ground-reaction force angle and provide the critical input underlying the directional tuning of the automatic postural response for balance.Keywords
This publication has 48 references indexed in Scilit:
- Contribution of Cutaneous Inputs From the Hindpaw to the Control of Locomotion. I. Intact CatsJournal of Neurophysiology, 2003
- Cutaneous afferents from human plantar sole contribute to body posture awarenessNeuroReport, 2002
- Distribution and behaviour of glabrous cutaneous receptors in the human foot soleThe Journal of Physiology, 2002
- Interaction of vestibular, somatosensory and visual signals for postural control and motion perception under terrestrial and microgravity conditions—a conceptual modelBrain Research Reviews, 1998
- The plantar sole is a ‘dynamometric map’ for human balance controlNeuroReport, 1998
- Significance of Pressor Input from the Human Feet in Anterior-Posterior Postural Control: The Effect of Hypothermia on Vibration-Induced Body-swayActa Oto-Laryngologica, 1990
- A system for the analysis of posture and stance in quadrupedsJournal of Neuroscience Methods, 1987
- The significance of proprioception on postural stabilization as assessed by ischemiaBrain Research, 1984
- Comparisons of punctate, edge and surface stimulation of peripheral, slowly-adapting, cutaneous, afferent units of catsBrain Research, 1979
- Morphology of rapidly and slowly adapting mechano-receptors in the hairless skin of the cat's hind footBrain Research, 1971