The Human Brain in Numbers: A Linearly Scaled-up Primate Brain
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[1] K A C ELLIOTT,et al. Activity of acetylcholine system in cerebral cortex of various unanesthetized mammals. , 1952, The American journal of physiology.
[2] G. A. Shariff,et al. Cell counts in the primate cerebral cortex , 1953, The Journal of comparative neurology.
[3] R. Friede. [Quantitative share of the glia in development of the cortex]. , 1954, Acta anatomica.
[4] Reinhard L. Friede,et al. DER QUANTITATIVE ANTEIL DER GLIA AN DER CORTEXENTWICKLUNG , 1954 .
[5] 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.
[6] J. Olszewski,et al. Glia/nerve cell index for cortex of the whale. , 1957, Science.
[7] E. Bennett,et al. Quantitative synaptic changes with differential experience in rat brain. , 1971, The International journal of neuroscience.
[8] H. J. Jerison,et al. Evolution of the Brain and Intelligence , 1973 .
[9] R. Martin,et al. Relative brain size and basal metabolic rate in terrestrial vertebrates , 1981, Nature.
[10] D. Macdonald. Dwindling resources and the social behaviour of Capybaras, (Hydrochoerus hydrochaeris) (Mammalia) , 1981 .
[11] J. Rothwell. Principles of Neural Science , 1982 .
[12] H. J. Jerison. Animal intelligence as encephalization. , 1985, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[13] W. Wilczynski,et al. Allometry of major CNS divisions: towards a reevaluation of somatic brain-body scaling. , 1986, Brain, behavior and evolution.
[14] 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.
[15] R. Williams,et al. The control of neuron number. , 1988, Annual review of neuroscience.
[16] H J Gundersen,et al. Total number of neurons and glial cells in human brain nuclei estimated by the disector and the fractionator , 1988, Journal of microscopy.
[17] A. Reichenbach. Glia:Neuron index: Review and hypothesis to account for different values in various mammals , 1989, Glia.
[18] Andreas Reichenbach,et al. Size and density of glial and neuronal cells within the cerebral neocortex of various insectivorian species , 1989, Glia.
[19] R. Shprintzen,et al. What's in a name? , 1990, The Cleft palate journal.
[20] W. Greenough,et al. Learning causes synaptogenesis, whereas motor activity causes angiogenesis, in cerebellar cortex of adult rats. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[21] B. Pakkenberg,et al. A quantitative study of the human cerebellum with unbiased stereological techniques , 1992, The Journal of comparative neurology.
[22] B. Finlay,et al. Linked regularities in the development and evolution of mammalian brains. , 1995, Science.
[23] A. MacLarnon. The scaling of gross dimensions of the spinal cord in primates and other species , 1996 .
[24] B. Pakkenberg,et al. Neocortical neuron number in humans: Effect of sex and age , 1997, The Journal of comparative neurology.
[25] T. Deacon. WHAT MAKES THE HUMAN BRAIN DIFFERENT , 1997 .
[26] Lori Marino,et al. A Comparison of Encephalization between Odontocete Cetaceans and Anthropoid Primates , 1998, Brain, Behavior and Evolution.
[27] What's in a Name? , 1998, The Classical Review.
[28] 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.
[29] T. Sejnowski,et al. A universal scaling law between gray matter and white matter of cerebral cortex. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[30] W. Greenough,et al. Dendritic spine structural anomalies in fragile-X mental retardation syndrome. , 2000, Cerebral cortex.
[31] C. Nunn,et al. Allometric Slopes and Independent Contrasts: A Comparative Test of Kleiber’s Law in Primate Ranging Patterns , 2000, The American Naturalist.
[32] P. Schoenemann,et al. Brain size does not predict general cognitive ability within families. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[33] G. V. Van Hoesen,et al. Prefrontal cortex in humans and apes: a comparative study of area 10. , 2001, American journal of physical anthropology.
[34] B. Barres,et al. Control of synapse number by glia. , 2001, Science.
[35] Partha P. Mitra,et al. Scalable architecture in mammalian brains , 2001, Nature.
[36] S. Schultz. Principles of Neural Science, 4th ed. , 2001 .
[37] James K Rilling,et al. A quantitative morphometric comparative analysis of the primate temporal lobe. , 2002, Journal of human evolution.
[38] F. Sultan,et al. How did brains evolve ? , 2002 .
[39] L. Marino. Convergence of Complex Cognitive Abilities in Cetaceans and Primates , 2002, Brain, Behavior and Evolution.
[40] H. Damasio,et al. Humans and great apes share a large frontal cortex , 2002, Nature Neuroscience.
[41] Suzana Herculano-Houzel,et al. Do You Know Your Brain? A Survey on Public Neuroscience Literacy at the Closing of the Decade of the Brain , 2002, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[42] F. Doetsch,et al. The glial identity of neural stem cells , 2003, Nature Neuroscience.
[43] R A Barton,et al. The evolution of the cortico-cerebellar complex in primates: anatomical connections predict patterns of correlated evolution. , 2003, Journal of human evolution.
[44] P. Thomas Schoenemann,et al. Brain Size Scaling and Body Composition in Mammals , 2003, Brain, Behavior and Evolution.
[45] L. Lefebvre,et al. Brains, Innovations and Evolution in Birds and Primates , 2004, Brain, Behavior and Evolution.
[46] Bogdan Draganski,et al. Neuroplasticity: Changes in grey matter induced by training , 2004, Nature.
[47] W. Lange,et al. Cell number and cell density in the cerebellar cortex of man and some other mammals , 2004, Cell and Tissue Research.
[48] P. Schoenemann,et al. Prefrontal white matter volume is disproportionately larger in humans than in other primates , 2005, Nature Neuroscience.
[49] J. Allman,et al. Brain of the African elephant (Loxodonta africana): neuroanatomy from magnetic resonance images. , 2005, The anatomical record. Part A, Discoveries in molecular, cellular, and evolutionary biology.
[50] Roberto Lent,et al. Isotropic Fractionator: A Simple, Rapid Method for the Quantification of Total Cell and Neuron Numbers in the Brain , 2005, The Journal of Neuroscience.
[51] G. Roth,et al. Evolution of the brain and intelligence , 2005, Trends in Cognitive Sciences.
[52] A. Nevill,et al. Modeling physiological and anthropometric variables known to vary with body size and other confounding variables. , 2005, American journal of physical anthropology.
[53] S. Herculano‐Houzel,et al. Cellular scaling rules for rodent brains , 2006, Proceedings of the National Academy of Sciences.
[54] P. Hof,et al. Evolution of increased glia–neuron ratios in the human frontal cortex , 2006, Proceedings of the National Academy of Sciences.
[55] J. Rilling. Human and nonhuman primate brains: Are they allometrically scaled versions of the same design? , 2006 .
[56] R. Barton. Primate brain evolution: Integrating comparative, neurophysiological, and ethological data , 2006 .
[57] N. Ramnani. The primate cortico-cerebellar system: anatomy and function , 2006, Nature Reviews Neuroscience.
[58] Robert O Deaner,et al. Overall Brain Size, and Not Encephalization Quotient, Best Predicts Cognitive Ability across Non-Human Primates , 2007, Brain, Behavior and Evolution.
[59] A. Kriegstein,et al. Contribution of intermediate progenitor cells to cortical histogenesis. , 2007, Archives of neurology.
[60] S. Herculano‐Houzel. Encephalization, Neuronal Excess, and Neuronal Index in Rodents , 2007, Anatomical record.
[61] L. Lefebvre,et al. Cetaceans Have Complex Brains for Complex Cognition , 2007, PLoS biology.
[62] E. Vallender. Exploring the Origins of the Human Brain through Molecular Evolution , 2008, Brain, Behavior and Evolution.
[63] J. Kaas,et al. The basic nonuniformity of the cerebral cortex , 2008, Proceedings of the National Academy of Sciences.
[64] M. Press. Human: The science behind what makes us unique. , 2008 .
[65] B. Pakkenberg,et al. Neocortical glial cell numbers in human brains , 2008, Neurobiology of Aging.
[66] C. Davis. What's in a name, AKI? , 2009, Liver transplantation : official publication of the American Association for the Study of Liver Diseases and the International Liver Transplantation Society.
[67] Diana K. Sarko,et al. Neuroanatomy Original Research Article Cellular Scaling Rules of Insectivore Brains , 2022 .
[68] 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.
[69] Nicola J. Allen,et al. Neuroscience: Glia — more than just brain glue , 2009, Nature.
[70] Patrick R Hof,et al. Von Economo Neurons in the Elephant Brain , 2009, Anatomical record.
[71] J. Allman,et al. Total number and volume of Von Economo neurons in the cerebral cortex of cetaceans , 2009, The Journal of comparative neurology.
[72] Peter T. Fox,et al. Mosaic evolution of brain structure in mammals , 2022 .