To investigate the contribution of the vestibular velocity-storage mechanism (VSM) to the vertical rotational vestibulo-ocular reflex (rVOR) we recorded eye movements evoked by off-vertical axis rotation (OVAR) using whole-body constant-velocity pitch rotations about an earth-horizontal, interaural axis in four healthy human subjects. Subjects were tumbled forward, and backward, at 60 deg/s for over 1 min using a 3D turntable. Slow-phase velocity (SPV) responses were similar to the horizontal responses elicited by OVAR along the body longitudinal axis, (‘barbecue’ rotation), with exponentially decaying amplitudes and a residual, otolith-driven sinusoidal response with a bias. The time constants of the vertical SPV ranged from 6 to 9 s. These values are closer to those that reflect the dynamic properties of vestibular afferents than the typical 20 s produced by the VSM in the horizontal plane, confirming the relatively smaller contribution of the VSM to these vertical responses. Our preliminary results also agree with the idea that the VSM velocity response aligns with the direction of gravity. The horizontal and torsional eye velocity traces were also sinusoidally modulated by the change in gravity, but showed no exponential decay.

Do humans show velocity-storage in the vertical rVOR?

BERTOLINI, GIOVANNI
;
RAMAT, STEFANO
2008-01-01

Abstract

To investigate the contribution of the vestibular velocity-storage mechanism (VSM) to the vertical rotational vestibulo-ocular reflex (rVOR) we recorded eye movements evoked by off-vertical axis rotation (OVAR) using whole-body constant-velocity pitch rotations about an earth-horizontal, interaural axis in four healthy human subjects. Subjects were tumbled forward, and backward, at 60 deg/s for over 1 min using a 3D turntable. Slow-phase velocity (SPV) responses were similar to the horizontal responses elicited by OVAR along the body longitudinal axis, (‘barbecue’ rotation), with exponentially decaying amplitudes and a residual, otolith-driven sinusoidal response with a bias. The time constants of the vertical SPV ranged from 6 to 9 s. These values are closer to those that reflect the dynamic properties of vestibular afferents than the typical 20 s produced by the VSM in the horizontal plane, confirming the relatively smaller contribution of the VSM to these vertical responses. Our preliminary results also agree with the idea that the VSM velocity response aligns with the direction of gravity. The horizontal and torsional eye velocity traces were also sinusoidally modulated by the change in gravity, but showed no exponential decay.
2008
Using eye movements as an experimental probe of brain function. A symposium in honor of Jean Büttner-Ennever
C. Kennard, R. J. Leigh
Medical Research, Organs & Systems includes resources dealing with the normal and disease states of single organs, tissues, or single physiological systems, exclusive of the heart, vascular and immune systems. Systems covered here include hepatology, pulmonary function/physiology, gastroenterology, otolaryngology, respiratory system, andrology, gynecology and reproduction, dermatology, and dentistry/odontology. Resources dealing with general physiology, classes of disease that immediately affect many or all body systems, and medical research focused on specific types of medical intervention are excluded.
Esperti anonimi
Inglese
Internazionale
STAMPA
171
207
210
4
978-0-444-53163-6
Elsevier
Oxford
REGNO UNITO DI GRAN BRETAGNA
mathematical modeling; vestibular system; velocity storage mechanism
2 Contributo in Volume::2.1 Contributo in volume (Capitolo o Saggio)
5
268
none
Bertolini, Giovanni; Bockisch, Cj; Straumann, D; Zee, Ds; Ramat, Stefano
info:eu-repo/semantics/bookPart
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/140611
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