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pubmed-article:7459999pubmed:abstractTextRecently discovered neocortical equivalents in anamniotes and certain patterns of interspecific variability in brain organization provide new insights into evolutionary and ontogenetic mechanisms of development. The new data suggest that nervous systems become more complex, not by one system invading another, but by a process of parcellation that involves the selective loss of connections of the newly formed daughter aggregates and subsystems. The parcellation process is reflected in the normal ontogenetic development of the CNS in a given species and can be manipulated, to a certain extent, by deprivation or surgically induced sprouting. The parcellation theory allows certain predictions about the range of variation of a given system at all levels of analysis including the cellular and aggregate levels. For example, the interspecific variability in organization of cortical columns, thalamic nuclei, cortical areas and tectal layers can be explained. The findings, summarized here, suggest that diffuse, undifferentiated systems existed in the beginning of vertebrate evolution and that during the evolution of complex behaviors, and analytical capacities related to these behaviors, a range of patterns of neural systems evolved that relate to these functions. One principle underlying the growth, differentiation and multiplication of neural systems appears to be the process of parcellation as defined by the theory.lld:pubmed
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pubmed-article:7459999pubmed:authorpubmed-author:EbbessonS OSOlld:pubmed
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pubmed-article:7459999pubmed:pagination179-212lld:pubmed
pubmed-article:7459999pubmed:dateRevised2010-11-18lld:pubmed
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pubmed-article:7459999pubmed:articleTitleThe parcellation theory and its relation to interspecific variability in brain organization, evolutionary and ontogenetic development, and neuronal plasticity.lld:pubmed
pubmed-article:7459999pubmed:publicationTypeJournal Articlelld:pubmed
pubmed-article:7459999pubmed:publicationTypeComparative Studylld:pubmed
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