Receptive field properties and laminar organization of lateral geniculate nucleus in the gray squirrel (Sciurus carolinensis).
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Stephen D Van Hooser | Stephen D. Van Hooser | S. Nelson | J. Heimel | J Alexander F Heimel | Sacha B Nelson
[1] M. Ogren,et al. The neurological organization of pathways between the dorsal lateral geniculate nucleus and visual cortex in old world and new world primates , 1978, The Journal of comparative neurology.
[2] G. H. Jacobs,et al. Visual acuity and spatial contrast sensitivity in tree squirrels , 1982, Behavioural Processes.
[3] W. Levick,et al. Sustained and transient neurones in the cat's retina and lateral geniculate nucleus , 1971, The Journal of physiology.
[4] C. Enroth-Cugell,et al. Receptive field properties of X and Y cells in the cat retina derived from contrast sensitivity measurements , 1982, Vision Research.
[5] G. Orban,et al. Calcium binding proteins and neuropeptides as molecular markers of GABAergic interneurons in the cat visual cortex , 2004, Experimental Brain Research.
[6] T. Nealey,et al. Magnocellular and parvocellular contributions to responses in the middle temporal visual area (MT) of the macaque monkey , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[7] 深田 芳郎,et al. Receptive field organization of cat optic nerve fibers with special reference to conduction velocity , 1969 .
[8] R. Shapley,et al. The primate retina contains two types of ganglion cells, with high and low contrast sensitivity. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[9] K. Naka,et al. S‐potentials from colour units in the retina of fish (Cyprinidae) , 1966, The Journal of physiology.
[10] C. R. Michael. Receptive fields of single optic nerve fibers in a mammal with an all-cone retina. 3. Opponent color units. , 1968, Journal of neurophysiology.
[11] R. Grützmann,et al. Effects of cholecystokinin on Y, X, and W cells in the dorsal lateral geniculate nucleus of rats , 1996, Experimental Brain Research.
[12] G. H. Jacobs,et al. Spectral mechanisms in the tree squirrel retina , 1988, Journal of Comparative Physiology A.
[13] C. Enroth-Cugell,et al. The contrast sensitivity of retinal ganglion cells of the cat , 1966, The Journal of physiology.
[14] R. Shapley,et al. Cat and monkey retinal ganglion cells and their visual functional roles , 1986, Trends in Neurosciences.
[15] Vivien A. Casagrande,et al. The Afferent, Intrinsic, and Efferent Connections of Primary Visual Cortex in Primates , 1994 .
[16] E. G. Jones,et al. Monoclonal antibody that identifies subsets of neurones in the central visual system of monkey and cat , 1984, Nature.
[17] G. H. Jacobs,et al. An animal model for studying cone function in retinal detachment , 2004, Documenta Ophthalmologica.
[18] J. Marden,et al. An Approach to Multivariate Rank Tests in Multivariate Analysis of Variance , 1997 .
[19] R. Hassler. Comparative Anatomy of the Central Visual Systems in Day- and Night-active Primates , 1966 .
[20] John W. Lane,et al. Marking microelectrode penetrations with fluorescent dyes , 1996, Journal of Neuroscience Methods.
[21] Yutaka Fukuda,et al. A three-group classification of rat retinal ganglion cells: histological and physiological studies , 1977, Brain Research.
[22] J. K. Harting,et al. Projection of the mammalian superior colliculus upon the dorsal lateral geniculate nucleus: Organization of tectogeniculate pathways in nineteen species , 1991, The Journal of comparative neurology.
[23] D. Watson. Vertebrate Paleontology , 1946, Nature.
[24] R. Tootell,et al. Spectral-response properties of optic-nerve fibers in the ground squirrel. , 1981, Journal of neurophysiology.
[25] Randy J. Nelson,et al. Visual Responses of Ganglion Cells -- Webvision: The Organization of the Retina and Visual System , 1995 .
[26] W. C. Hall,et al. Visual cortex of the grey squirrel (Sciurus carolinensis): Architectonic subdivisions and connections from the visual thalamus , 1972, The Journal of comparative neurology.
[27] M. Celio,et al. Calbindin D-28k and parvalbumin in the rat nervous system , 1990, Neuroscience.
[28] C. Gissi,et al. Where do rodents fit? Evidence from the complete mitochondrial genome of Sciurus vulgaris. , 2000, Molecular biology and evolution.
[29] N. Daw,et al. Opponent Color Cells in the Cat Lateral Geniculate Nucleus , 1970, Science.
[30] T. T. Norton,et al. Laminar organization of receptive field properties in the dorsal lateral geniculate nucleus of the tree shrew (Tupaiaglis belangeri) , 1995, The Journal of comparative neurology.
[31] J. T. Weber,et al. The parabigeminogeniculate projection: Connectional studies in eight mammals , 1991, The Journal of comparative neurology.
[32] J. Kaas,et al. Cortical connections of areas 17 (V‐I) and 18 (V‐II) of squirrels , 1989, The Journal of comparative neurology.
[33] M. C. Citron,et al. Nonlinear interactions in ganglion cell receptive fields. , 1981, Journal of Neurophysiology.
[34] R. Reid,et al. The koniocellular pathway in primate vision. , 2000, Annual review of neuroscience.
[35] S. Fisher,et al. The distributions of photoreceptors and ganglion cells in the California ground squirrel, Spermophilus beecheyi , 1983, The Journal of comparative neurology.
[36] W. C. Hall,et al. The organization of the pulvinar in the grey squirrel (Sciurus carolinensis). I. Cytoarchitecture and connections , 1977, The Journal of comparative neurology.
[37] R. Fisher. THE USE OF MULTIPLE MEASUREMENTS IN TAXONOMIC PROBLEMS , 1936 .
[38] R Blake,et al. Visual resolution in the cat. , 1974, Vision research.
[39] Paul R. Martin,et al. Visual responses of ganglion cells of a New‐World primate, the capuchin monkey, Cebus apella , 2000, The Journal of physiology.
[40] Moshe Gur,et al. Retinal ganglion cell activity in the ground squirrel under halothane anesthesia , 1978, Vision Research.
[41] R. Shapley,et al. Quantitative analysis of retinal ganglion cell classifications. , 1976, The Journal of physiology.
[42] G. H. Jacobs. Wavelength discrimination in gray squirrels , 1976, Vision Research.
[43] S. Murray Sherman,et al. X- and Y-cells in the dorsal lateral geniculate nucleus of the tree shrew (Tupaia glis) , 1975, Brain Research.
[44] C. R. Michael. Receptive fields of single optic nerve fibers in a mammal with an all-cone retina. I: contrast-sensitive units. , 1968, Journal of neurophysiology.
[45] J Bullier,et al. Comparison of receptive-field properties of X and Y ganglion cells with X and Y lateral geniculate cells in the cat. , 1979, Journal of neurophysiology.
[46] D. Fitzpatrick,et al. The laminar organization of the lateral geniculate body and the striate cortex in the tree shrew (Tupaia glis) , 1984, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[47] J. B. Levitt,et al. Visual response properties of neurons in the LGN of normally reared and visually deprived macaque monkeys. , 2001, Journal of neurophysiology.
[48] P. Lennie,et al. Spatial contrast sensitivity of cells in the lateral geniculate nucleus of the rat. , 1981, The Journal of physiology.
[49] D. Fitzpatrick,et al. Lateral geniculate projections to the superficial layers of visual cortex in the tree shrew , 1992, The Journal of comparative neurology.
[50] M. McCourt,et al. Refractive state, depth of focus and accommodation of the eye of the California ground squirrel (Spermophilus Beecheyi) , 1984, Vision Research.
[51] P. D. Wilson,et al. Receptive field properties and latencies of cells in the lateral geniculate nucleus of the North American opossum (Didelphis virginiana). , 1986, Journal of neurophysiology.
[52] R. Shapley,et al. X and Y cells in the lateral geniculate nucleus of macaque monkeys. , 1982, The Journal of physiology.
[53] D. Fitzpatrick,et al. Morphology of retinogeniculate axons in the macaque , 1989, Visual Neuroscience.
[54] M. Paolini,et al. Direction selectivity in the middle lateral and lateral (ML and L) visual areas in the California ground squirrel. , 1998, Cerebral cortex.
[55] R. W. Rodieck. Jonathan Stone Parallel Processing in the Visual System: The Classific , 1984, Trends in Neurosciences.
[56] S. Sherman,et al. X- and Y-cells in the dorsal lateral geniculate nucleus of the owl monkey (Aotus trivirgatus) , 1976, Science.
[57] W. C. Hall,et al. Connections of layer VI in striate cortex of the grey squirrel (Sciurus carolinensis) , 1975, Brain Research.
[58] A. Leventhal. The neural basis of visual function , 1991 .
[59] R. W. Rodieck,et al. Identification, classification and anatomical segregation of cells with X‐like and Y‐like properties in the lateral geniculate nucleus of old‐world primates. , 1976, The Journal of physiology.
[60] John H. R. Maunsell,et al. Visual response latencies of magnocellular and parvocellular LGN neurons in macaque monkeys , 1999, Visual Neuroscience.
[61] A. Leventhal. Evidence that the different classes of relay cells of the cat's lateral geniculate nucleus terminate in different layers of the striate cortex , 1979, Experimental Brain Research.
[62] M. McCourt,et al. Spatial filter characteristics of optic nerve fibers in California ground squirrel (Spermophilus beecheyi). , 1984, Journal of neurophysiology.
[63] A. B. Bonds,et al. A comparison of koniocellular, magnocellular and parvocellular receptive field properties in the lateral geniculate nucleus of the owl monkey (Aotus trivirgatus) , 2001, The Journal of physiology.
[64] A. Sestokas,et al. Visual response latency of X- and Y-cells in the dorsal lateral geniculate nucleus of the cat , 1986, Vision Research.
[65] Y. Fukuda,et al. Retinal inputs and laminar distributions of the dorsal lateral geniculate nucleus relay cells in the eastern chipmunk (Tamias sibiricus asiaticus) , 2004, Experimental Brain Research.
[66] J. Bullier,et al. X and Y relay cells in cat lateral geniculate nucleus: quantitative analysis of receptive-field properties and classification. , 1979, Journal of neurophysiology.
[67] J. Stone,et al. Properties of cat retinal ganglion cells: a comparison of W-cells with X- and Y-cells. , 1974, Journal of neurophysiology.
[68] C. R. Michael. Receptive fields of single optic nerve fibers in a mammal with an all-cone retina. II: directionally selective units. , 1968, Journal of neurophysiology.
[69] V. Casagrande,et al. Contrast-sensitivity functions of W-, X-, and Y-like relay cells in the lateral geniculate nucleus of bush baby, Galago crassicaudatus. , 1988, Journal of neurophysiology.
[70] H. Swadlow,et al. Receptive-field and axonal properties of neurons in the dorsal lateral geniculate nucleus of awake unparalyzed rabbits. , 1985, Journal of neurophysiology.
[71] G. H. Jacobs,et al. Color vision and visual sensitivity in the California ground squirrel (Citellus beecheyi). , 1972, Vision research.
[72] D. Fitzpatrick,et al. Calcium binding proteins distinguish large and small cells of the ventral posterior and lateral geniculate nuclei of the prosimian galago and the tree shrew (Tupaia belangeri). , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[73] H. Wässle,et al. The retinal projection to the thalamus in the cat: A quantitative investigation and a comparison with the retinotectal pathway , 1981, The Journal of comparative neurology.
[74] A. L. Humphrey,et al. Projection patterns of individual X‐ and Y‐cell axons from the lateral geniculate nucleus to cortical area 17 in the cat , 1985, The Journal of comparative neurology.
[75] Vivien A. Casagrande,et al. W-like response properties of interlaminar zone cells in the lateral geniculate nucleus of a primate (Galago crassicaudatus) , 1986, Brain Research.
[76] H. Gould. Interhemispheric connections of the visual cortex in the grey squirrel (Sciurus carolinensis) , 1984, The Journal of comparative neurology.
[77] ’ K.POWERS,et al. DEPTH OF FOCUS, EYE SIZE AND VISUAL ACUITY , 2002 .
[78] L. Krubitzer,et al. Organization and connections of V1 in Monodelphis domestica , 2000, The Journal of comparative neurology.
[79] R. Shapley,et al. Linear and nonlinear spatial subunits in Y cat retinal ganglion cells. , 1976, The Journal of physiology.
[80] E. G. Jones,et al. Viewpoint: the core and matrix of thalamic organization , 1998, Neuroscience.
[81] A. Cowey,et al. Retinal ganglion cells that project to the dorsal lateral geniculate nucleus in the macaque monkey , 1984, Neuroscience.
[82] R C Reid,et al. Visual physiology of the lateral geniculate nucleus in two species of New World monkey: Saimiri sciureus and Aotus trivirgatis , 2000, The Journal of physiology.
[83] D. Snodderly,et al. Organization of striate cortex of alert, trained monkeys (Macaca fascicularis): ongoing activity, stimulus selectivity, and widths of receptive field activating regions. , 1995, Journal of neurophysiology.
[84] R. L. de Valois,et al. Psychophysical studies of monkey vision. 3. Spatial luminance contrast sensitivity tests of macaque and human observers. , 1974, Vision research.
[85] D. Hubel,et al. Spatial and chromatic interactions in the lateral geniculate body of the rhesus monkey. , 1966, Journal of neurophysiology.
[86] J. Dowling,et al. Anatomical evidence for cone and rod‐like receptors in the gray squirrel, ground squirrel, and prairie dog retinas , 1975, The Journal of comparative neurology.
[87] D G Pelli,et al. The VideoToolbox software for visual psychophysics: transforming numbers into movies. , 1997, Spatial vision.
[88] Bb Lee,et al. Visual responses in the lateral geniculate nucleus of dichromatic and trichromatic marmosets (Callithrix jacchus) , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[89] W. C. Hall,et al. Projections from the superior colliculus to the dorsal lateral geniculate nucleus of the grey squirrel (Sciurus carolinensis) , 1976, Brain Research.
[90] R W Rodieck,et al. Retinal ganglion cells: properties, types, genera, pathways and trans-species comparisons. , 1983, Brain, behavior and evolution.
[91] C. R. Michael. Integration of retinal and cortical information in the superior colliculus of the ground squirrel. , 1970, Brain, behavior and evolution.
[92] C. R. Michael. Visual response properties and functional organization of cells in the superior colliculus of the ground squirrel. , 1971, Vision research.
[93] Paul R. Martin,et al. Evidence that Blue‐on Cells are Part of the Third Geniculocortical Pathway in Primates , 1997, The European journal of neuroscience.
[94] R W Guillery,et al. Some principles of organization in the dorsal lateral geniculate nucleus. , 1972, Brain, behavior and evolution.
[95] B. Dreher,et al. A correlation of receptive field properties with conduction velocity of cells in the rat's retino-geniculo-cortical pathway , 1979, Experimental Brain Research.
[96] D. Hubel,et al. Segregation of form, color, movement, and depth: anatomy, physiology, and perception. , 1988, Science.
[97] E. G. Jones,et al. Differential Calcium Binding Protein Immunoreactivity Distinguishes Classes of Relay Neurons in Monkey Thalamic Nuclei , 1989, The European journal of neuroscience.
[98] G. H. Jacobs. Primate photopigments and primate color vision. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[99] M. Sur,et al. Monoclonal antibody cat‐301 identifies Y‐cells in the dorsal lateral geniculate nucleus of the cat , 1990, The Journal of comparative neurology.
[100] J. K. Harting,et al. The geniculostriate projection in the grey squirrel: preliminary autoradiographic data , 1983, Brain Research.
[101] J. Kaas,et al. Patterns of retinal terminations and laminar organization of the lateral geniculate nucleus of primates , 1978, The Journal of comparative neurology.
[102] D H Brainard,et al. The Psychophysics Toolbox. , 1997, Spatial vision.
[103] D. Fitzpatrick,et al. The laminar organization of the lateral geniculate body and the striate cortex in the squirrel monkey (Saimiri sciureus) , 1983, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[104] B. Knight,et al. Contrast gain control in the primate retina: P cells are not X-like, some M cells are , 1992, Visual Neuroscience.
[105] L. Croner,et al. Receptive fields of P and M ganglion cells across the primate retina , 1995, Vision Research.