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Linear ensemble-coding in midbrain superior colliculus specifies the saccade kinematics
- Source :
- Biological Cybernetics, Biological Cybernetics, 98, 6, pp. 561-77, Biological Cybernetics, 98, 561-77
- Publication Year :
- 2007
-
Abstract
- Contains fulltext : 69496.pdf (author's version ) (Open Access) Contains fulltext : 69496.pdf (Publisher’s version ) (Closed access) Recently, we proposed an ensemble-coding scheme of the midbrain superior colliculus (SC) in which, during a saccade, each spike emitted by each recruited SC neuron contributes a fixed minivector to the gaze-control motor output. The size and direction of this 'spike vector' depend exclusively on a cell's location within the SC motor map (Goossens and Van Opstal, in J Neurophysiol 95: 2326-2341, 2006). According to this simple scheme, the planned saccade trajectory results from instantaneous linear summation of all spike vectors across the motor map. In our simulations with this model, the brainstem saccade generator was simplified by a linear feedback system, rendering the total model (which has only three free parameters) essentially linear. Interestingly, when this scheme was applied to actually recorded spike trains from 139 saccade-related SC neurons, measured during thousands of eye movements to single visual targets, straight saccades resulted with the correct velocity profiles and nonlinear kinematic relations ('main sequence properties' and 'component stretching'). Hence, we concluded that the kinematic nonlinearity of saccades resides in the spatial-temporal distribution of SC activity, rather than in the brainstem burst generator. The latter is generally assumed in models of the saccadic system. Here we analyze how this behaviour might emerge from this simple scheme. In addition, we will show new experimental evidence in support of the proposed mechanism.
- Subjects :
- Superior Colliculi
Time Factors
General Computer Science
Models, Neurological
Biophysics
Action Potentials
Kinematics
Feedback
03 medical and health sciences
0302 clinical medicine
Cognitive neurosciences [UMCN 3.2]
Perception and Action [DCN 1]
Reaction Time
Saccades
Animals
Computer vision
Attention
Nonlinearity
030304 developmental biology
Neurons
0303 health sciences
Original Paper
Quantitative Biology::Neurons and Cognition
business.industry
Superior colliculus
Linear model
Eye movement
Main sequence
Biomechanical Phenomena
Monkey
Nonlinear system
Population coding
Saccade
Linear Models
Spatial accuracy
Artificial intelligence
Brainstem
Visual Fields
business
Psychology
Neural coding
Algorithm
030217 neurology & neurosurgery
Photic Stimulation
Computer Science(all)
Biotechnology
Subjects
Details
- ISSN :
- 03401200
- Volume :
- 98
- Issue :
- 6
- Database :
- OpenAIRE
- Journal :
- Biological cybernetics
- Accession number :
- edsair.doi.dedup.....af9bce7964534428fb2fc2595c7a7ec1