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Titlebook: Cerebral Cortex; Comparative Structur Edward G. Jones,Alan Peters Book 1990 Springer Science+Business Media New York 1990 anatomy.brain.cor

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發(fā)表于 2025-3-21 16:07:37 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書目名稱Cerebral Cortex
副標(biāo)題Comparative Structur
編輯Edward G. Jones,Alan Peters
視頻videohttp://file.papertrans.cn/224/223295/223295.mp4
叢書名稱Cerebral Cortex
圖書封面Titlebook: Cerebral Cortex; Comparative Structur Edward G. Jones,Alan Peters Book 1990 Springer Science+Business Media New York 1990 anatomy.brain.cor
描述The cerebral cortex, especially that part customarily designated "neocortex," is one of the hallmarks of mammalian evolution and reaches its greatest size, relatively speaking, and its widest structural diversity in the human brain. The evolution of this structure, as remarkable for the huge numbers of neurons that it contains as for the range of behaviors that it controls, has been of abiding interest to many generations of neuroscientists. Yet few theories of cortical evo- lution have been proposed and none has stood the test of time. In particular, no theory has been successful in bridging the evolutionary gap that appears to exist between the pallium of non mammalian vertebrates and the neocortex of mam- mals. Undoubtedly this stems in large part from the rapid divergence of non- mammalian and mammalian forms and the lack of contemporary species whose telencephalic wall can be seen as having transitional characteristics. The mono- treme cortex, for example, is unquestionably mammalian in organization and that of no living reptile comes close to resembling it. Yet anatomists such as Ramon y Cajal, on examining the finer details of cortical structure, were struck by the similarit
出版日期Book 1990
關(guān)鍵詞anatomy; brain; cortex; evolution; forebrain; neurobiology; neurology; neurons; organization; physiology; time
版次1
doihttps://doi.org/10.1007/978-1-4615-3824-0
isbn_softcover978-1-4613-6706-2
isbn_ebook978-1-4615-3824-0Series ISSN 1566-6816
issn_series 1566-6816
copyrightSpringer Science+Business Media New York 1990
The information of publication is updating

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發(fā)表于 2025-3-21 21:22:59 | 只看該作者
Comparative Aspects of Olfactory Cortexs (Ari?ns Kappers ., 1936): neocortex, hippocampal archicortex, and olfactory paleocortex. An often-stated speculation with little experimental or theoretical support is that the neocortex evolved through “elaboration” of the olfactory cortex and/or hippocampal cortex. Errors by early anatomists con
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Comparative Anatomy of the Hippocampuse anatomical, physiological, and biochemical properties of the various subfields and interconnections of the hippocampal formation. Indeed, hippocampus is now one of the most thoroughly described regions in mammalian brain. Despite this, it has not been possible to link the specific neurobiological
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The Role of Somatic Sensory Cortex in Tactile Discrimination in Primatese neuroanatomical and electrophysiological methods that have dominated research on cortical sensory areas over the last 75 years. As these new experimental techniques gained in prominence in research on nonhuman species (and perhaps occupied the “acutest intellects in medicine”), interest in sensory
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Book 1990s having transitional characteristics. The mono- treme cortex, for example, is unquestionably mammalian in organization and that of no living reptile comes close to resembling it. Yet anatomists such as Ramon y Cajal, on examining the finer details of cortical structure, were struck by the similarit
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Comparative Aspects of Olfactory Cortexlose parallels in the morphology, physiology, and pharmacology of the neuronal circuitry in mammalian olfactory cortex with that in both neocortex and hippocampal cortex. This chapter was undertaken to explore the nature, roots, and implications of these parallels by comparative analysis of the olfa
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Organization of the Cerebral Cortex in Monotremes and Marsupialse, 1987). Furthermore, the reptilian-like precursors of these three mammalian orders may bear little resemblance to surviving reptiles as both the reptilian and the mammalian lines have evolved over independent courses for approximately 300 million years since the Carboniferous period (Dawson, 1983)
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