Literature DB >> 12037171

Role of arcuate frontal cortex of monkeys in smooth pursuit eye movements. I. Basic response properties to retinal image motion and position.

Masaki Tanaka1, Stephen G Lisberger.   

Abstract

Anatomical and physiological studies have shown that the "frontal pursuit area" (FPA) in the arcuate cortex of monkeys is involved in the control of smooth pursuit eye movements. To further analyze the signals carried by the FPA, we examined the activity of pursuit-related neurons recorded from a discrete region near the arcuate spur during a variety of oculomotor tasks. Pursuit neurons showed direction tuning with a wide range of preferred directions and a mean full width at half-maximum of 129 degrees. Analysis of latency using the "receiver operating characteristic" to compare responses to target motion in opposite directions showed that the directional response of 58% of FPA neurons led the initiation of pursuit, while 19% led by 25 ms or more. Analysis of neuronal responses during pursuit of a range of target velocities revealed that the sensitivity to eye velocity was larger during the initiation of pursuit than during the maintenance of pursuit, consistent with two components of firing related to image motion and eye motion. FPA neurons showed correlates of two behavioral features of pursuit documented in prior reports. 1) Eye acceleration at the initiation of pursuit declines as a function of the eccentricity of the moving target. FPA neurons show decreased firing at the initiation of pursuit in parallel with the decline in eye acceleration. This finding is consistent with prior suggestions that the FPA plays a role in modulating the gain of visual-motor transmission for pursuit. 2) A stationary eccentric cue evokes a smooth eye movement opposite in direction to the cue and enhances the pursuit evoked by subsequent target motions. Many pursuit neurons in the FPA showed weak, phasic visual responses for stationary targets and were tuned for the positions about 4 degrees eccentric on the side opposite to the preferred pursuit direction. However, few neurons (12%) responded during the preparation or execution of saccades. The responses to the stationary target could account for the behavioral effects of stationary, eccentric cues. Further analysis of the relationship between firing rate and retinal position error during pursuit in the preferred and opposite directions failed to provide evidence for a large contribution of image position to the firing of FPA neurons. We conclude that FPA processes information in terms of image and eye velocity and that it is functionally separate from the saccadic frontal eye fields, which processes information in terms of retinal image position.

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Mesh:

Year:  2002        PMID: 12037171      PMCID: PMC2652416          DOI: 10.1152/jn.2002.87.6.2684

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


  47 in total

1.  Frontal eye field as defined by intracortical microstimulation in squirrel monkeys, owl monkeys, and macaque monkeys. II. Cortical connections.

Authors:  M F Huerta; L A Krubitzer; J H Kaas
Journal:  J Comp Neurol       Date:  1987-11-15       Impact factor: 3.215

2.  Gaze-dependent visual neurons in area V3A of monkey prestriate cortex.

Authors:  C Galletti; P P Battaglini
Journal:  J Neurosci       Date:  1989-04       Impact factor: 6.167

Review 3.  Neural control of pursuit eye movements.

Authors:  R Eckmiller
Journal:  Physiol Rev       Date:  1987-07       Impact factor: 37.312

4.  Frontal eye field lesions in monkeys disrupt visual pursuit.

Authors:  J C Lynch
Journal:  Exp Brain Res       Date:  1987       Impact factor: 1.972

5.  A method for measuring horizontal and vertical eye movement chronically in the monkey.

Authors:  A F Fuchs; D A Robinson
Journal:  J Appl Physiol       Date:  1966-05       Impact factor: 3.531

6.  Visual orientation and spatial frequency discrimination: a comparison of single neurons and behavior.

Authors:  A Bradley; B C Skottun; I Ohzawa; G Sclar; R D Freeman
Journal:  J Neurophysiol       Date:  1987-03       Impact factor: 2.714

7.  Temporal encoding of two-dimensional patterns by single units in primate inferior temporal cortex. II. Quantification of response waveform.

Authors:  B J Richmond; L M Optican
Journal:  J Neurophysiol       Date:  1987-01       Impact factor: 2.714

Review 8.  Visual motion processing and sensory-motor integration for smooth pursuit eye movements.

Authors:  S G Lisberger; E J Morris; L Tychsen
Journal:  Annu Rev Neurosci       Date:  1987       Impact factor: 12.449

9.  Properties of visual inputs that initiate horizontal smooth pursuit eye movements in monkeys.

Authors:  S G Lisberger; L E Westbrook
Journal:  J Neurosci       Date:  1985-06       Impact factor: 6.167

10.  Enhancement of multiple components of pursuit eye movement by microstimulation in the arcuate frontal pursuit area in monkeys.

Authors:  Masaki Tanaka; Stephen G Lisberger
Journal:  J Neurophysiol       Date:  2002-02       Impact factor: 2.714

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  28 in total

1.  Voluntary eye movements direct attention on the mental number space.

Authors:  Mariagrazia Ranzini; Matteo Lisi; Marco Zorzi
Journal:  Psychol Res       Date:  2016-02-02

2.  Cortical afferents to the smooth-pursuit region of the macaque monkey's frontal eye field.

Authors:  Gregory B Stanton; Harriet R Friedman; Elisa C Dias; Charles J Bruce
Journal:  Exp Brain Res       Date:  2005-06-07       Impact factor: 1.972

3.  Visual and vergence eye movement-related responses of pursuit neurons in the caudal frontal eye fields to motion-in-depth stimuli.

Authors:  Teppei Akao; Sergei A Kurkin; Junko Fukushima; Kikuro Fukushima
Journal:  Exp Brain Res       Date:  2005-05-28       Impact factor: 1.972

4.  Involvement of the central thalamus in the control of smooth pursuit eye movements.

Authors:  Masaki Tanaka
Journal:  J Neurosci       Date:  2005-06-22       Impact factor: 6.167

Review 5.  The vestibular-related frontal cortex and its role in smooth-pursuit eye movements and vestibular-pursuit interactions.

Authors:  Junko Fukushima; Teppei Akao; Sergei Kurkin; Chris R S Kaneko; Kikuro Fukushima
Journal:  J Vestib Res       Date:  2006       Impact factor: 2.435

6.  Neural activity in the frontal pursuit area does not underlie pursuit target selection.

Authors:  Shaun Mahaffy; Richard J Krauzlis
Journal:  Vision Res       Date:  2010-10-21       Impact factor: 1.886

7.  Feature extraction from spike trains with Bayesian binning: 'latency is where the signal starts'.

Authors:  Dominik Endres; Mike Oram
Journal:  J Comput Neurosci       Date:  2009-05-16       Impact factor: 1.621

8.  Otolith inputs to pursuit neurons in the frontal eye fields of alert monkeys.

Authors:  Teppei Akao; Sergei Kurkin; Junko Fukushima; Kikuro Fukushima
Journal:  Exp Brain Res       Date:  2008-11-22       Impact factor: 1.972

Review 9.  Eye tracking dysfunction in schizophrenia: characterization and pathophysiology.

Authors:  Deborah L Levy; Anne B Sereno; Diane C Gooding; Gilllian A O'Driscoll
Journal:  Curr Top Behav Neurosci       Date:  2010

10.  A mechanism for decision rule discrimination by supplementary eye field neurons.

Authors:  Supriya Ray; Stephen J Heinen
Journal:  Exp Brain Res       Date:  2014-11-05       Impact factor: 1.972

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