Cellular signatures in the primary visual cortex of phylogeny and placentation
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[1] J. Carlisle. The quick and the dead , 2013, Anaesthesia.
[2] César López Llera. La vida loca , 2013 .
[3] C. Soligo,et al. Life-History Correlates of Placental Structure in Eutherian Evolution , 2011, Evolutionary Biology.
[4] R. Barton,et al. Maternal investment, life histories, and the costs of brain growth in mammals , 2011, Proceedings of the National Academy of Sciences.
[5] R. Barton,et al. Placentation and Maternal Investment in Mammals , 2010, The American Naturalist.
[6] P. Manger,et al. Immunohistochemical parcellation of the ferret (Mustela putorius) visual cortex reveals substantial homology with the cat (Felis catus) , 2010, The Journal of comparative neurology.
[7] J. Kaas,et al. Cellular Scaling Rules for the Brains of an Extended Number of Primate Species , 2010, Brain, Behavior and Evolution.
[8] R. Barton,et al. Phylogeny and metabolic scaling in mammals. , 2010, Ecology.
[9] Soyoung Q. Park,et al. The von Economo neurons in frontoinsular and anterior cingulate cortex in great apes and humans , 2010, Brain Structure and Function.
[10] A. Schleicher,et al. Hominoid visual brain structure volumes and the position of the lunate sulcus. , 2010, Journal of human evolution.
[11] Katrin Amunts,et al. Comparative cytoarchitectural analyses of striate and extrastriate areas in hominoids. , 2010, Cerebral cortex.
[12] Suzana Herculano-Houzel,et al. Coordinated Scaling of Cortical and Cerebellar Numbers of Neurons , 2010, Front. Neuroanat..
[13] J Nucl Med , 2010 .
[14] B. Crespi,et al. Phylogenetic evidence for early hemochorial placentation in eutheria. , 2009, Placenta.
[15] N. Kolm,et al. Distinct Evolutionary Patterns of Brain and Body Size During Adaptive Radiation , 2009, Evolution; international journal of organic evolution.
[16] J. Allman,et al. Total number and volume of Von Economo neurons in the cerebral cortex of cetaceans , 2009, The Journal of comparative neurology.
[17] Jon H Kaas,et al. Architectonic Subdivisions of Neocortex in the Tree Shrew (Tupaia belangeri) , 2009, Anatomical record.
[18] Frederico A. C. Azevedo,et al. Equal numbers of neuronal and nonneuronal cells make the human brain an isometrically scaled‐up primate brain , 2009, The Journal of comparative neurology.
[19] Patrick R Hof,et al. Von Economo Neurons in the Elephant Brain , 2009, Anatomical record.
[20] D. Maddison,et al. Mesquite: a modular system for evolutionary analysis. Version 2.6 , 2009 .
[21] J. Allman,et al. Neocortical neuron types in Xenarthra and Afrotheria: implications for brain evolution in mammals , 2009, Brain Structure and Function.
[22] Nitzan Mekel-Bobrov,et al. Genetic basis of human brain evolution , 2008, Trends in Neurosciences.
[23] Kathleen R. Gibson,et al. Evolutionary Anatomy of the Primate Cerebral Cortex , 2008 .
[24] G. Paxinos,et al. Cortical Cyto- and Chemoarchitecture in Three Small Australian Marsupial Carnivores: Sminthopsis macroura, Antechinus stuartii and Phascogale calura , 2008, Brain, Behavior and Evolution.
[25] J. Cross,et al. The evolution, regulation, and function of placenta-specific genes. , 2008, Annual review of cell and developmental biology.
[26] R. Furutani. Laminar and cytoarchitectonic features of the cerebral cortex in the Risso's dolphin (Grampus griseus), striped dolphin (Stenella coeruleoalba), and bottlenose dolphin (Tursiops truncatus) , 2008, Journal of anatomy.
[27] S. Laughlin,et al. Energy limitation as a selective pressure on the evolution of sensory systems , 2008, Journal of Experimental Biology.
[28] Patrick R Hof,et al. Functional Trade-Offs in White Matter Axonal Scaling , 2008, The Journal of Neuroscience.
[29] R. Martin. Evolution of Placentation in Primates: Implications of Mammalian Phylogeny , 2008, Evolutionary Biology.
[30] D. Wildman,et al. Distinct genomic signatures of adaptation in pre- and postnatal environments during human evolution , 2008, Proceedings of the National Academy of Sciences.
[31] R. Galli,et al. Adult neural stem cells. , 2008, Methods in molecular biology.
[32] L. Revell,et al. Testing quantitative genetic hypotheses about the evolutionary rate matrix for continuous characters , 2008 .
[33] D. Collar,et al. Integrated diversification of locomotion and feeding in labrid fishes , 2008, Biology Letters.
[34] D. Irschick,et al. THE QUICK AND THE DEAD: CORRELATIONAL SELECTION ON MORPHOLOGY, PERFORMANCE, AND HABITAT USE IN ISLAND LIZARDS , 2007, Evolution; international journal of organic evolution.
[35] J. Drake. Parental investment and fecundity, but not brain size, are associated with establishment success in introduced fishes , 2007 .
[36] William R Leonard,et al. Effects of brain evolution on human nutrition and metabolism. , 2007, Annual review of nutrition.
[37] U. Grömping. Estimators of Relative Importance in Linear Regression Based on Variance Decomposition , 2007 .
[38] Jeffrey A. Walker,et al. A general model of functional constraints on phenotypic evolution. , 2007, The American naturalist.
[39] Kate E. Jones,et al. The delayed rise of present-day mammals , 1990, Nature.
[40] C. Ross,et al. Evolution of eye size and shape in primates. , 2007, Journal of human evolution.
[41] J. Kaas,et al. Cellular scaling rules for primate brains , 2007, Proceedings of the National Academy of Sciences.
[42] S. J. Arnold,et al. Resolving the Paradox of Stasis: Models with Stabilizing Selection Explain Evolutionary Divergence on All Timescales , 2007, The American Naturalist.
[43] Patrick R Hof,et al. Structure of the cerebral cortex of the humpback whale, Megaptera novaeangliae (Cetacea, Mysticeti, Balaenopteridae) , 2007, Anatomical record.
[44] P. Hof,et al. The Evolution of Neuron Types and Cortical Histology in Apes and Humans , 2007 .
[45] Candy Rowe,et al. A critique of comparative studies of brain size , 2007, Proceedings of the Royal Society B: Biological Sciences.
[46] P. Hof,et al. Scaling of Inhibitory Interneurons in Areas V1 and V2 of Anthropoid Primates as Revealed by Calcium-Binding Protein Immunohistochemistry , 2006, Brain, Behavior and Evolution.
[47] P. Hof,et al. Evolution of increased glia–neuron ratios in the human frontal cortex , 2006, Proceedings of the National Academy of Sciences.
[48] Ulrike Groemping,et al. Relative Importance for Linear Regression in R: The Package relaimpo , 2006 .
[49] M. Crawford. Docosahexaenoic Acid in Neural Signaling Systems , 2006, Nutrition and health.
[50] M. Westoby,et al. Bivariate line‐fitting methods for allometry , 2006, Biological reviews of the Cambridge Philosophical Society.
[51] Derek E Wildman,et al. Evolution of the mammalian placenta revealed by phylogenetic analysis. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[52] Xu Yu-bo,et al. Reachability Checking of Finite Precision Timed Automata , 2006 .
[53] M. West,et al. Estimators of the precision of stereological estimates: An example based on the CA1 pyramidal cell layer of rats , 2005, Neuroscience.
[54] Patrick R Hof,et al. Morphomolecular neuronal phenotypes in the neocortex reflect phylogenetic relationships among certain mammalian orders. , 2005, The anatomical record. Part A, Discoveries in molecular, cellular, and evolutionary biology.
[55] P. Hof,et al. Animal Studies Repository Animal Studies Repository Cortical Complexity in Cetacean Brains , 2022 .
[56] B. Barres,et al. Signaling between glia and neurons: focus on synaptic plasticity , 2005, Current Opinion in Neurobiology.
[57] Timothy B Sackton,et al. A Scan for Positively Selected Genes in the Genomes of Humans and Chimpanzees , 2005, PLoS biology.
[58] Marcello G P Rosa,et al. Brain maps, great and small: lessons from comparative studies of primate visual cortical organization , 2005, Philosophical Transactions of the Royal Society B: Biological Sciences.
[59] D. Wildman,et al. Accelerated evolution of the electron transport chain in anthropoid primates. , 2004, Trends in genetics : TIG.
[60] C. Walsh,et al. Abnormal cerebellar development and axonal decussation due to mutations in AHI1 in Joubert syndrome , 2004, Nature Genetics.
[61] A. Carter,et al. What can comparative studies of placental structure tell us?--A review. , 2004, Placenta.
[62] E. L. Schwartz,et al. Afferent geometry in the primate visual cortex and the generation of neuronal trigger features , 1977, Biological Cybernetics.
[63] W. Hartwig. The Primate Fossil Record , 2008 .
[64] P. Horner,et al. New roles for astrocytes: The nightlife of an ‘astrocyte’. La vida loca! , 2003, Trends in Neurosciences.
[65] Matthew A. Zapala,et al. Elevated gene expression levels distinguish human from non-human primate brains , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[66] S. Goldman,et al. New roles for astrocytes: Redefining the functional architecture of the brain , 2003, Trends in Neurosciences.
[67] S. Cunnane,et al. Survival of the fattest: fat babies were the key to evolution of the large human brain. , 2003, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[68] T. Kunz,et al. Comparative analysis of expression and secretion of placental leptin in mammals. , 2003, American journal of physiology. Regulatory, integrative and comparative physiology.
[69] Mark Ellisman,et al. Examination of the relationship between astrocyte morphology and laminar boundaries in the molecular layer of adult dentate gyrus , 2003, The Journal of comparative neurology.
[70] G. Piéroni,et al. Differential Effect of w3 PUFA Supplementations on Na,K-ATPase and Mg-ATPase Activities: Possible Role of the Membrane w6/w3 Ratio , 2003, The Journal of Membrane Biology.
[71] L. Aiello,et al. ENERGETICS AND THE EVOLUTION OF THE GENUS HOMO , 2002 .
[72] T. Kosaka,et al. Structural and quantitative analysis of astrocytes in the mouse hippocampus , 2002, Neuroscience.
[73] M. Kollef,et al. The quick and the dead: the importance of rapid evaluation of infiltrates in the immunocompromised patient. , 2002, Chest.
[74] Todd M Preuss,et al. Human-specific organization of primary visual cortex: alternating compartments of dense Cat-301 and calbindin immunoreactivity in layer 4A. , 2002, Cerebral cortex.
[75] Hideo Tsukada,et al. Age-related changes in cerebral blood flow and glucose metabolism in conscious rhesus monkeys , 2002, Brain Research.
[76] Fred H. Gage,et al. Astroglia induce neurogenesis from adult neural stem cells , 2002, Nature.
[77] J. Parkington,et al. Brain-specific lipids from marine, lacustrine, or terrestrial food resources: potential impact on early African Homo sapiens. , 2002, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[78] S. Wang,et al. Scaling laws in the mammalian neocortex: Does form provide clues to function? , 2002, Journal of neurocytology.
[79] B. Keverne,et al. Book Review: Evolutionary Anatomy of the Primate Cerebral Cortex. Edited by Dean Falk and Kathleen R. Gibson, Cambridge University Press, Cambridge, MA, 2001, xvii + 344 pp., $80.00 (hardback) , 2002, International Journal of Primatology.
[80] Stephen J. Smith,et al. Cholesterol--Making or Breaking the Synapse , 2001, Science.
[81] A. Hidalgo,et al. The Drosophila neuregulin vein maintains glial survival during axon guidance in the CNS. , 2001, Developmental cell.
[82] E. Hansson,et al. Signaling and gene expression in the neuron–glia unit during brain function and dysfunction: Holger Hydén in memoriam , 2001, Neurochemistry International.
[83] P. Hof,et al. An unusual population of pyramidal neurons in the anterior cingulate cortex of hominids contains the calcium-binding protein calretinin , 2001, Neuroscience Letters.
[84] P. Haydon. Glia: listening and talking to the synapse , 2001, Nature Reviews Neuroscience.
[85] Mark A. Changizi,et al. Principles underlying mammalian neocortical scaling , 2001, Biological Cybernetics.
[86] I. Tatsuno,et al. PACAP is an anti-mitogenic signal in developing cerebral cortex , 2001, Nature Neuroscience.
[87] B. Barres,et al. Control of synapse number by glia. , 2001, Science.
[88] Todd M. Preuss,et al. Evolutionary Anatomy of the Primate Cerebral Cortex: The discovery of cerebral diversity: an unwelcome scientific revolution , 2001 .
[89] S. J. Smith,et al. Neurobiology. Cholesterol--making or breaking the synapse. , 2001, Science.
[90] D. Wildman,et al. Molecular evolution of aerobic energy metabolism in primates. , 2001, Molecular phylogenetics and evolution.
[91] G. Cosnard,et al. Comparison of regional cerebral blood flow and glucose metabolism in the normal brain: effect of aging , 2000, Journal of the Neurological Sciences.
[92] D E Kuhl,et al. Three-dimensional stereotactic surface projection analysis of macaque brain PET: development and initial applications. , 2000, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[93] P. Hof,et al. Neurochemical and Cellular Specializations in the Mammalian Neocortex Reflect Phylogenetic Relationships: Evidence from Primates, Cetaceans, and Artiodactyls , 2000, Brain, Behavior and Evolution.
[94] D. R. Kornack. Neurogenesis and the Evolution of Cortical Diversity: Mode, Tempo, and Partitioning during Development and Persistence in Adulthood , 2000, Brain, Behavior and Evolution.
[95] H. Kimelberg,et al. Neuronal–glial interactions and behaviour , 2000, Neuroscience & Biobehavioral Reviews.
[96] Anthony R. Ives,et al. Using the Past to Predict the Present: Confidence Intervals for Regression Equations in Phylogenetic Comparative Methods , 2000, The American Naturalist.
[97] P. Rakic. Molecular and cellular mechanisms of neuronal migration: relevance to cortical epilepsies. , 2000, Advances in neurology.
[98] D. Chivers,et al. On Diet and Gut Size in Non‐human Primates and Humans: Is There a Relationship to Brain Size? , 1999, Current Anthropology.
[99] J. Kaas,et al. Distinctive compartmental organization of human primary visual cortex. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[100] G. Elston,et al. Distribution and patterns of connectivity of interneurons containing calbindin, calretinin, and parvalbumin in visual areas of the occipital and temporal lobes of the macaque monkey , 1999, The Journal of comparative neurology.
[101] M. Rosa. Topographic organisation of extrastriate areas in the flying fox: Implications for the evolution of mammalian visual cortex , 1999, The Journal of comparative neurology.
[102] J. Flier,et al. Printed in U.S.A. Copyright © 1999 by The Endocrine Society Regulation of Neuronal and Glial Proteins by Leptin: Implications for Brain Development* , 2022 .
[103] J. Allman,et al. A neuronal morphologic type unique to humans and great apes. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[104] H. Gundersen,et al. The efficiency of systematic sampling in stereology — reconsidered , 1999, Journal of microscopy.
[105] D E Kuhl,et al. Motor correlates of occipital glucose hypometabolism in Parkinson’s disease without dementia , 1999, Neurology.
[106] P. Hof,et al. Cellular distribution of the calcium-binding proteins parvalbumin, calbindin, and calretinin in the neocortex of mammals: phylogenetic and developmental patterns , 1999, Journal of Chemical Neuroanatomy.
[107] Konrad Sandau,et al. Unbiased Stereology. Three‐Dimensional Measurement in Microscopy. , 1999 .
[108] A. Araque,et al. Astrocyte-induced modulation of synaptic transmission. , 1999, Canadian journal of physiology and pharmacology.
[109] K. Mounzih,et al. Leptin is not necessary for gestation and parturition but regulates maternal nutrition via a leptin resistance state. , 1998, Endocrinology.
[110] J. Pintar,et al. The PACAP Ligand/Receptor System Regulates Cerebral Cortical Neurogenesis a , 1998, Annals of the New York Academy of Sciences.
[111] S. Goldman,et al. Astrocyte-mediated potentiation of inhibitory synaptic transmission , 1998, Nature Neuroscience.
[112] A. Dale,et al. The Retinotopy of Visual Spatial Attention , 1998, Neuron.
[113] N. Hoggard,et al. Regulation of leptin production: a dominant role for the sympathetic nervous system? , 1998, Proceedings of the Nutrition Society.
[114] P. Rakić,et al. Changes in cell-cycle kinetics during the development and evolution of primate neocortex. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[115] V. Howard,et al. Unbiased Stereology: Three-Dimensional Measurement in Microscopy , 1998 .
[116] F. Pfrieger,et al. Synaptic efficacy enhanced by glial cells in vitro. , 1997, Science.
[117] Javier DeFelipe,et al. Colocalization of parvalbumin and calbindin D-28k in neurons including chandelier cells of the human temporal neocortex , 1997, Journal of Chemical Neuroanatomy.
[118] J. Prothero,et al. Scaling of cortical neuron density and white matter volume in mammals. , 1997, Journal fur Hirnforschung.
[119] R. Pascher,et al. Heterogeneity in the columnar number of neurons in different neocortical areas in the rat , 1996, Neuroscience Letters.
[120] J. Kaas,et al. Parvalbumin-like immunoreactivity of layer V pyramidal cells in the motor and somatosensory cortex of adult primates , 1996, Brain Research.
[121] P. Rakic,et al. Radial and horizontal deployment of clonally related cells in the primate neocortex: Relationship to distinct mitotic lineages , 1995, Neuron.
[122] M. Pelleymounter,et al. Effects of the obese gene product on body weight regulation in ob/ob mice. , 1995, Science.
[123] J. Morrison,et al. Spindle neurons of the human anterior cingul. Ate cortex , 1995, The Journal of comparative neurology.
[124] L. Aiello,et al. The Expensive-Tissue Hypothesis: The Brain and the Digestive System in Human and Primate Evolution , 1995, Current Anthropology.
[125] J. Morrison,et al. Neurofilament protein defines regional patterns of cortical organization in the macaque monkey visual system: A quantitative immunohistochemical analysis , 1995, The Journal of comparative neurology.
[126] L. Aiello,et al. The expensive tissue hypothesis , 1995 .
[127] M. Maffei,et al. Positional cloning of the mouse obese gene and its human homologue , 1995, Nature.
[128] Kathleen S. Rockland,et al. Primary Visual Cortex in Primates , 1994, Cerebral Cortex.
[129] C. Rieder,et al. Greatwall kinase , 2004, The Journal of cell biology.
[130] Theodore Garland,et al. Phylogenetic Analysis of Covariance by Computer Simulation , 1993 .
[131] C. Beaulieu,et al. Numerical data on neocortical neurons in adult rat, with special reference to the GABA population , 1993, Brain Research.
[132] M. Wong-Riley,et al. Cytochrome oxidase in the human visual cortex: Distribution in the developing and the adult brain , 1993, Visual Neuroscience.
[133] Müller Cm. Glial cell functions and activity-dependent plasticity of the mammalian visual cortex. , 1993 .
[134] A. Peters,et al. Neuronal organization in area 17 of cat visual cortex. , 1993, Cerebral cortex.
[135] C. Müller. Glial cell functions and activity-dependent plasticity of the mammalian visual cortex. , 1993, Perspectives on developmental neurobiology.
[136] P. Morgane,et al. Calretinin-immunoreactive neurons in the primary visual cortex of dolphin and human brains , 1992, Brain Research.
[137] J. Morrison,et al. The primary auditory cortex in cetacean and human brain: A comparative analysis of neurofilament protein-containing pyramidal neurons , 1992, Neuroscience Letters.
[138] M. Pagel. A method for the analysis of comparative data , 1992 .
[139] P S Goldman-Rakic,et al. Architectonics of the parietal and temporal association cortex in the strepsirhine primate Galago compared to the anthropoid primate Macaca , 1991, The Journal of comparative neurology.
[140] P. Goldman-Rakic,et al. Myelo‐ and cytoarchitecture of the granular frontal cortex and surrounding regions in the strepsirhine primate Galago and the anthropoid primate Macaca , 1991, The Journal of comparative neurology.
[141] P. Goldman-Rakic,et al. Ipsilateral cortical connections of granular frontal cortex in the strepsirhine primate Galago, with comparative comments on anthropoid primates , 1991, The Journal of comparative neurology.
[142] A. Peters,et al. Organization of pyramidal neurons in area 17 of monkey visual cortex , 1991, The Journal of comparative neurology.
[143] M. Celio,et al. Calbindin D-28k and parvalbumin in the rat nervous system , 1990, Neuroscience.
[144] P H Harvey,et al. Comparing brains. , 1990, Science.
[145] G Durand,et al. The effects of dietary alpha-linolenic acid on the composition of nerve membranes, enzymatic activity, amplitude of electrophysiological parameters, resistance to poisons and performance of learning tasks in rats. , 1989, The Journal of nutrition.
[146] J. Eisenberg,et al. Brain Size and Its Relation to the Rate of Metabolism in Mammals , 1989, The American Naturalist.
[147] M. Hatten,et al. In vitro neurite extension by granule neurons is dependent upon astroglial-derived fibroblast growth factor. , 1988, Developmental biology.
[148] H Haug,et al. Brain sizes, surfaces, and neuronal sizes of the cortex cerebri: a stereological investigation of man and his variability and a comparison with some mammals (primates, whales, marsupials, insectivores, and one elephant). , 1987, The American journal of anatomy.
[149] H J Gundersen,et al. The efficiency of systematic sampling in stereology and its prediction * , 1987, Journal of microscopy.
[150] H. W. Mossman,et al. Vertebrate fetal membranes : comparative ontogeny and morphology; evolution; phylogenetic significance; basic functions; research opportunities , 1987 .
[151] K Zilles,et al. Quantitative cytoarchitectonics of the posterior cingulate cortex in primates , 1986, The Journal of comparative neurology.
[152] M. Hatten,et al. Weaver mouse cerebellar granule neurons fail to migrate on wild-type astroglial processes in vitro , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[153] F. Valverde,et al. Intrinsic neocortical organization: Some comparative aspects , 1986, Neuroscience.
[154] H. Sherk. Location and connections of visual cortical areas in the cat's suprasylvian sulcus , 1986, The Journal of comparative neurology.
[155] L. Garey,et al. Golgi and Nissl studies of the visual cortex of the bottlenose dolphin , 1985, The Journal of comparative neurology.
[156] 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.
[157] S. J. Arnold,et al. THE MEASUREMENT OF SELECTION ON CORRELATED CHARACTERS , 1983, Evolution; international journal of organic evolution.
[158] R. Martin,et al. Relative brain size and basal metabolic rate in terrestrial vertebrates , 1981, Nature.
[159] D. B. Tower,et al. THE ACTIVITIES OF BUTYRYLCHOLINESTERASE AND CARBONIC ANHYDRASE, THE RATE OF ANAEROBIC GLYCOLYSTS, AND THE QUESTION OF A CONSTANT DENSITY OF GLIAL CELLS IN CEREBRAL CORTICES OF VARIOUS MAMMALIAN SPECIES FROM MOUSE TO WHALE , 1973, Journal of neurochemistry.
[160] F. James Rohlf,et al. Biometry: The Principles and Practice of Statistics in Biological Research , 1969 .
[161] R. Friede,et al. Neuronal extension and glial supply: functional significance of glia. , 1962, Proceedings of the National Academy of Sciences of the United States of America.
[162] D. Whitteridge,et al. The representation of the visual field on the cerebral cortex in monkeys , 1961, The Journal of physiology.
[163] J. Olszewski,et al. Glia/nerve cell index for cortex of the whale. , 1957, Science.
[164] D. B. Tower,et al. Structural and functional organization of mammalian cerebral cortex: The correlation of neurone density with brain size. Cortical neurone density in the fin whale (Balaenoptera Physalus L.) with a note on the cortical neurone density in the Indian elephant , 1954, The Journal of comparative neurology.
[165] G. Holmes. Ferrier Lecture - The organization of the visual cortex in man , 1945, Proceedings of the Royal Society of London. Series B - Biological Sciences.
[166] S. A. Talbot,et al. Physiological Studies on Neural Mechanisms of Visual Localization and Discrimination , 1941 .
[167] W. E. Clark,et al. The Visual Cortex of Primates. , 1925, Journal of anatomy.
[168] G. Holmes. DISTURBANCES OF VISION BY CEREBRAL LESIONS , 1918, The British journal of ophthalmology.