Computational study on monkey VOR adaptation and smooth pursuit based on the parallel control-pathway theory.
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[1] M Ito,et al. Neurophysiological aspects of the cerebellar motor control system. , 1970, International journal of neurology.
[2] M. Ito,et al. Neural design of the cerebellar motor control system. , 1972, Brain research.
[3] D. Robinson,et al. Eye movements evoked by cerebellar stimulation in the alert monkey. , 1973, Journal of neurophysiology.
[4] A. Fuchs,et al. Role of primate flocculus during rapid behavioral modification of vestibuloocular reflex. II. Mossy fiber firing patterns during horizontal head rotation and eye movement. , 1978, Journal of neurophysiology.
[5] P. Brodal,et al. The corticopontine projection in the rhesus monkey. Origin and principles of organization. , 1978, Brain : a journal of neurology.
[6] D. A. Suzuki,et al. The role of the flocculus of the monkey in fixation and smooth pursuit eye movements. , 1979, The Journal of physiology.
[7] P. Brodal,et al. The pontocerebellar projection in the rhesus monkey: An experimental study with retrograde axonal transport of horseradish peroxidase , 1979, Neuroscience.
[8] F. A. Miles,et al. Long-term adaptive changes in primate vestibuloocular reflex. III. Electrophysiological observations in flocculus of normal monkeys. , 1980, Journal of neurophysiology.
[9] F. A. Miles,et al. Long-term adaptive changes in primate vestibuloocular reflex. IV. Electrophysiological observations in flocculus of adapted monkeys. , 1980, Journal of neurophysiology.
[10] A. Gibson,et al. Corticopontine visual projections in macaque monkeys , 1980, The Journal of comparative neurology.
[11] F. A. Miles,et al. Plasticity in the vestibulo-ocular reflex: a new hypothesis. , 1981, Annual review of neuroscience.
[12] D. Zee,et al. Effects of ablation of flocculus and paraflocculus of eye movements in primate. , 1981, Journal of neurophysiology.
[13] Masao Ito,et al. Long-lasting depression of parallel fiber-Purkinje cell transmission induced by conjunctive stimulation of parallel fibers and climbing fibers in the cerebellar cortex , 1982, Neuroscience Letters.
[14] Masao Ito,et al. Climbing fibre induced depression of both mossy fibre responsiveness and glutamate sensitivity of cerebellar Purkinje cells , 1982, The Journal of physiology.
[15] P. Brodal,et al. Further observations on the cerebellar projections from the pontine nuclei and the nucleus reticularis tegmenti pontis in the rhesus monkey , 1982, The Journal of comparative neurology.
[16] John H. R. Maunsell,et al. The connections of the middle temporal visual area (MT) and their relationship to a cortical hierarchy in the macaque monkey , 1983, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[17] H. Sakata,et al. Functional properties of visual tracking neurons in posterior parietal association cortex of the monkey. , 1983, Journal of neurophysiology.
[18] Leslie G. Ungerleider,et al. Subcortical projections of area MT in the macaque , 1984, The Journal of comparative neurology.
[19] K. Kawano,et al. Response properties of neurons in posterior parietal cortex of monkey during visual-vestibular stimulation. I. Visual tracking neurons. , 1984, Journal of neurophysiology.
[20] Masao Ito. The Cerebellum And Neural Control , 1984 .
[21] Y. Miyashita,et al. Analysis of signal content of Purkinje cell responses to optokinetic stimuli in the rabbit cerebellar flocculus by selective lesions of brainstem pathways , 1984, Neuroscience Research.
[22] E. Watanabe. Role of the primate flocculus in adaptation of the vestibulo-ocular reflex , 1985, Neuroscience Research.
[23] M. Glickstein,et al. Corticopontine projection in the rat: The distribution of labelled cortical cells after large injections of horseradish peroxidase in the pontine nuclei , 1989, The Journal of comparative neurology.
[24] A. Fuchs,et al. Afferents to the flocculus of the cerebellum in the rhesus macaque as revealed by retrograde transport of horseradish peroxidase , 1985, The Journal of comparative neurology.
[25] S G Lisberger,et al. Vestibular signals carried by pathways subserving plasticity of the vestibulo-ocular reflex in monkeys , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[26] Leslie G. Ungerleider,et al. Cortical connections of visual area MT in the macaque , 1986, The Journal of comparative neurology.
[27] F A Miles,et al. Short-latency ocular following responses of monkey. III. Plasticity. , 1986, Journal of neurophysiology.
[28] F. A. Miles,et al. Short-latency ocular following responses of monkey. I. Dependence on temporospatial properties of visual input. , 1986, Journal of neurophysiology.
[29] E. J. Morris,et al. Different responses to small visual errors during initiation and maintenance of smooth-pursuit eye movements in monkeys. , 1987, Journal of neurophysiology.
[30] M. Sakurai. Synaptic modification of parallel fibre‐Purkinje cell transmission in in vitro guinea‐pig cerebellar slices. , 1987, The Journal of physiology.
[31] H. Komatsu,et al. Relation of cortical areas MT and MST to pursuit eye movements. II. Differentiation of retinal from extraretinal inputs. , 1988, Journal of neurophysiology.
[32] Leslie G. Ungerleider,et al. Fiber pathways of cortical areas mediating smooth pursuit eye movements in monkeys , 1988, Annals of neurology.
[33] D. A. Suzuki,et al. Smooth-pursuit eye movement deficits with chemical lesions in the dorsolateral pontine nucleus of the monkey. , 1988, Journal of neurophysiology.
[34] S G Lisberger,et al. The neural basis for learning of simple motor skills. , 1988, Science.
[35] R. Wurtz,et al. Pursuit and optokinetic deficits following chemical lesions of cortical areas MT and MST. , 1988, Journal of neurophysiology.
[36] S. G. Lisberger,et al. A Control Systems Model of Smooth Pursuit Eye Movements with Realistic Emergent Properties , 1989, Neural Computation.
[37] H. Komatsu,et al. Modulation of pursuit eye movements by stimulation of cortical areas MT and MST. , 1989, Journal of neurophysiology.
[38] S. Lisberger,et al. Visual responses of Purkinje cells in the cerebellar flocculus during smooth-pursuit eye movements in monkeys. I. Simple spikes. , 1990, Journal of neurophysiology.
[40] T. Hirano,et al. Depression and potentiation of the synaptic transmission between a granule cell and a Purkinje cell in rat cerebellar culture , 1990, Neuroscience Letters.
[41] Kenji Kawano,et al. Ocular following response deficits with chemical lesions in the medial superior temporal area of the monkey , 1991 .
[42] Soichi Nagao,et al. Contribution of oculomotor signals to the behavior of rabbit floccular Purkinje cells during reflex eye movements , 1991, Neuroscience Research.
[43] P. Thier,et al. Responses of Visual‐Tracking Neurons from Cortical Area MST‐I to Visual, Eye and Head Motion , 1992, The European journal of neuroscience.
[44] S. G. Lisberger,et al. Motor learning in a recurrent network model based on the vestibulo–ocular reflex , 1992, Nature.
[45] M. Kawato,et al. The cerebellum and VOR/OKR learning models , 1992, Trends in Neurosciences.
[46] S. Yamane,et al. Neural activity in dorsolateral pontine nucleus of alert monkey during ocular following responses. , 1992, Journal of neurophysiology.
[47] Leslie G. Ungerleider,et al. Subcortical connections of visual areas MST and FST in macaques , 1992, Visual Neuroscience.
[48] A. Konnerth,et al. Synaptic excitation produces a long-lasting rebound potentiation of inhibitory synaptic signals in cerebellar Purkinje cells , 1992, Nature.
[49] Masao Ito,et al. Cerebellar flocculus hypothesis , 1993, Nature.
[50] S. Yamane,et al. Neural activity in cortical area MST of alert monkey during ocular following responses. , 1994, Journal of neurophysiology.
[51] Masao Ito,et al. Stimulus parameters for induction of long-term depression in in vitro rat Purkinje cells , 1994, Neuroscience Research.
[52] S. Lisberger. Neural basis for motor learning in the vestibuloocular reflex of primates. III. Computational and behavioral analysis of the sites of learning. , 1994, Journal of neurophysiology.
[53] S. Lisberger,et al. Neural basis for motor learning in the vestibuloocular reflex of primates. II. Changes in the responses of horizontal gaze velocity Purkinje cells in the cerebellar flocculus and ventral paraflocculus. , 1994, Journal of neurophysiology.
[54] S. Lisberger,et al. Neural basis for motor learning in the vestibuloocular reflex of primates. I. Changes in the responses of brain stem neurons. , 1994, Journal of neurophysiology.
[55] S G Lisberger,et al. Responses during eye movements of brain stem neurons that receive monosynaptic inhibition from the flocculus and ventral paraflocculus in monkeys. , 1994, Journal of neurophysiology.
[56] R. F. Thompson,et al. Temporal specificity of long-term depression in parallel fiber--Purkinje synapses in rat cerebellar slice. , 1995, Learning & memory.
[57] E. Schutter. Cerebellar long-term depression might normalize excitation of Purkinje cells: a hypothesis , 1995, Trends in Neurosciences.
[58] M. Kano,et al. Long-lasting potentiation of GABAergic inhibitory synaptic transmission in cerebellar purkinje cells : Its properties and possible mechanisms , 1996 .
[59] W T Newsome,et al. How Is a Sensory Map Read Out? Effects of Microstimulation in Visual Area MT on Saccades and Smooth Pursuit Eye Movements , 1997, The Journal of Neuroscience.
[60] H. J. Wyatt,et al. Offset dynamics of human smooth pursuit eye movements: Effects of target presence and subject attention , 1997, Vision Research.
[61] Masao Ito. Cerebellar learning in the vestibulo–ocular reflex , 1998, Trends in Cognitive Sciences.
[62] M. Kawato,et al. Temporal firing patterns of Purkinje cells in the cerebellar ventral paraflocculus during ocular following responses in monkeys II. Complex spikes. , 1998, Journal of neurophysiology.
[63] Kenji Kawano,et al. Ocular tracking: behavior and neurophysiology , 1999, Current Opinion in Neurobiology.
[64] Graham R Barnes,et al. Predictive smooth pursuit eye movements during identification of moving acuity targets , 1999, Vision Research.
[65] M. Kawato,et al. Computational studies on acquisition and adaptation of ocular following responses based on cerebellar synaptic plasticity. , 2002, Journal of neurophysiology.
[66] R. Andersen,et al. Different patterns of corticopontine projections from separate cortical fields within the inferior parietal lobule and dorsal prelunate gyrus of the macaque , 2004, Experimental Brain Research.
[67] B. Dow,et al. Foveal tracking cells in the superior temporal sulcus of the macaque monkey , 2004, Experimental Brain Research.
[68] A. Fuchs,et al. Prediction in the oculomotor system: smooth pursuit during transient disappearance of a visual target , 2004, Experimental Brain Research.
[69] K. Kawano,et al. Role of Purkinje cells in the ventral paraflocculus in short-latency ocular following responses , 2004, Experimental Brain Research.
[70] H. Noda,et al. Eye movements evoked by microstimulation in the flocculus of the alert macaque , 2004, Experimental Brain Research.
[71] M. Fujita,et al. Simulation of adaptive modification of the vestibulo-ocular reflex with an adaptive filter model of the cerebellum , 1982, Biological Cybernetics.
[72] P. Thier,et al. A neuronal correlate of spatial stability during periods of self-induced visual motion , 2004, Experimental Brain Research.
[73] M. Fujita,et al. Adaptive filter model of the cerebellum , 1982, Biological Cybernetics.