Literature DB >> 9582236

Modeling control of eye orientation in three dimensions. I. Role of muscle pulleys in determining saccadic trajectory.

T Raphan1.   

Abstract

This study evaluates the effects of muscle axis shifts on the performance of a vector velocity-position integrator in the CNS. Earlier models of the oculomotor plant assumed that the muscle axes remained fixed relative to the head as the eye rotated into secondary and tertiary eye positions. Under this assumption, the vector integrator model generates torsional transients as the eye moves from secondary to tertiary positions of fixation. The torsional transient represents an eye movement response to a spatial mismatch between the torque axes that remain fixed in the head and the displacement plane that changes by half the angle of the change in eye orientation. When muscle axis shifts were incorporated into the model, the torque axes were closer to the displacement plane at each eye orientation throughout the trajectory, and torsional transients were reduced dramatically. Their size and dynamics were close to reported data. It was also shown that when the muscle torque axes were rotated by 50% of the eye rotation, there was no torsional transient and Listing's law was perfectly obeyed. When muscle torque axes rotated >50%, torsional transients reversed direction compared with what occurred for muscle axis shifts of <50%. The model indicates that Listing's law is implemented by the oculomotor plant subject to a two-dimensional command signal that is confined to the pitch-yaw plane, having zero torsion. Saccades that bring the eye to orientations outside Listing's plane could easily be corrected by a roll pulse that resets the roll state of the velocity-position integrator to zero. This would be a simple implementation of the corrective controller suggested by Van Opstal and colleagues. The model further indicates that muscle axis shifts together with the torque orientation relationship for tissue surrounding the eye and Newton's laws of motion form a sufficient plant model to explain saccadic trajectories and periods of fixation when driven by a vector command confined to the pitch-yaw plane. This implies that the velocity-position integrator is probably realized as a subtractive feedback vector integrator and not as a quaternion-based integrator that implements kinematic transformations to orient the eye.

Entities:  

Keywords:  Non-programmatic

Mesh:

Year:  1998        PMID: 9582236     DOI: 10.1152/jn.1998.79.5.2653

Source DB:  PubMed          Journal:  J Neurophysiol        ISSN: 0022-3077            Impact factor:   2.714


  30 in total

1.  Self-organizing task modules and explicit coordinate systems in a neural network model for 3-D saccades.

Authors:  M A Smith; J D Crawford
Journal:  J Comput Neurosci       Date:  2001 Mar-Apr       Impact factor: 1.621

2.  Premotor neurons encode torsional eye velocity during smooth-pursuit eye movements.

Authors:  Dora E Angelaki; J David Dickman
Journal:  J Neurosci       Date:  2003-04-01       Impact factor: 6.167

3.  Three-dimensional kinematics of saccadic and pursuit eye movements in humans: relationship between Donders' and Listing's laws.

Authors:  Matthew J Thurtell; Anand C Joshi; Mark F Walker
Journal:  Vision Res       Date:  2012-03-07       Impact factor: 1.886

4.  Revealing the kinematics of the oculomotor plant with tertiary eye positions and ocular counterroll.

Authors:  Eliana M Klier; Hui Meng; Dora E Angelaki
Journal:  J Neurophysiol       Date:  2010-11-24       Impact factor: 2.714

5.  Magnetic resonance imaging of the effects of horizontal rectus extraocular muscle surgery on pulley and globe positions and stability.

Authors:  Robert A Clark; Joseph L Demer
Journal:  Invest Ophthalmol Vis Sci       Date:  2006-01       Impact factor: 4.799

6.  Kinematics of vertical saccades during the yaw vestibulo-ocular reflex in humans.

Authors:  Benjamin T Crane; Junru Tian; Joseph L Demer
Journal:  Invest Ophthalmol Vis Sci       Date:  2005-08       Impact factor: 4.799

Review 7.  Current concepts of mechanical and neural factors in ocular motility.

Authors:  Joseph L Demer
Journal:  Curr Opin Neurol       Date:  2006-02       Impact factor: 5.710

Review 8.  Mechanics of the orbita.

Authors:  Joseph L Demer
Journal:  Dev Ophthalmol       Date:  2007

9.  Three-dimensional analysis of linear vestibulo-ocular reflex in humans during eccentric rotation while facing downwards.

Authors:  Takao Imai; Yasumitsu Takimoto; Noriaki Takeda; Tomoko Okumura; Hidenori Inohara
Journal:  Exp Brain Res       Date:  2017-05-30       Impact factor: 1.972

10.  Head stabilization by vestibulocollic reflexes during quadrupedal locomotion in monkey.

Authors:  Yongqing Xiang; Sergei B Yakushin; Mikhail Kunin; Theodore Raphan; Bernard Cohen
Journal:  J Neurophysiol       Date:  2008-06-18       Impact factor: 2.714

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