We explored the functional role of individual otoconia within the otolith system of mammalians responsible for the detection of linear accelerations and head tilts in relation to the gravity vector. Details of the inner structure and the shape of intact human and artificial otoconia were studied using environmental scanning electron microscopy (ESEM), including decalcification by ethylenediaminetetraacetic acid (EDTA) to discriminate local calcium carbonate density. Considerable differences between the rhombohedral faces of human and artificial otoconia already indicate that the inner architecture of otoconia is not consistent with the point group -3m. This is clearly confirmed by decalcified otoconia specimen which are characterized by a n...
grantor: University of TorontoThe vestibular system is the system of balance. The vestibu...
Head accelerations are sensed by the vestibular system in the inner ear. Linear accelerations stimul...
International audienceIt has been frequently observed that humans and animals spontaneously stabilis...
<div><p>We explored the functional role of individual otoconia within the otolith system of mammalia...
Abstract.: To investigate the dynamic effects of external forces on the displacement of the otolith ...
Subjective vertical orientation, eye and body movements, and motion sickness all depend on the way o...
To study the sensing process of the human semicircular canals (HSCs) during head rotation, which is ...
Contains fulltext : 36032.pdf (publisher's version ) (Closed access)Using vestibul...
In order to discriminate between translatory and gravitational linear acceleration as well as to loc...
The vestibular system provides information for spatial orientation. However, this information is amb...
Contains fulltext : 51167.pdf (publisher's version ) (Open Access)This thesis desc...
Our sense of balance is among the most central of our sensory systems, particularly in the evolution...
Highly conserved neural systems have evolved to sense the inertial forces due to head translation an...
Abstract In the interaural direction, translational linear acceleration is loaded during lateral tra...
Our sense of gravitation and linear acceleration is mediated by stimulation of vestibular hair cells...
grantor: University of TorontoThe vestibular system is the system of balance. The vestibu...
Head accelerations are sensed by the vestibular system in the inner ear. Linear accelerations stimul...
International audienceIt has been frequently observed that humans and animals spontaneously stabilis...
<div><p>We explored the functional role of individual otoconia within the otolith system of mammalia...
Abstract.: To investigate the dynamic effects of external forces on the displacement of the otolith ...
Subjective vertical orientation, eye and body movements, and motion sickness all depend on the way o...
To study the sensing process of the human semicircular canals (HSCs) during head rotation, which is ...
Contains fulltext : 36032.pdf (publisher's version ) (Closed access)Using vestibul...
In order to discriminate between translatory and gravitational linear acceleration as well as to loc...
The vestibular system provides information for spatial orientation. However, this information is amb...
Contains fulltext : 51167.pdf (publisher's version ) (Open Access)This thesis desc...
Our sense of balance is among the most central of our sensory systems, particularly in the evolution...
Highly conserved neural systems have evolved to sense the inertial forces due to head translation an...
Abstract In the interaural direction, translational linear acceleration is loaded during lateral tra...
Our sense of gravitation and linear acceleration is mediated by stimulation of vestibular hair cells...
grantor: University of TorontoThe vestibular system is the system of balance. The vestibu...
Head accelerations are sensed by the vestibular system in the inner ear. Linear accelerations stimul...
International audienceIt has been frequently observed that humans and animals spontaneously stabilis...