On dendrites in Down syndrome and DS murine models: a spiny way to learn


Autoria(s): Benavides-Piccione, R.; Ballesteros-Yanez, I.; Lagran, M. Martínez de; Elston, G.; Estivill, X.; Fillat, C.; DeFelipe, J.; Dierssen, M.
Contribuinte(s)

M.J. Zigmond

Data(s)

01/01/2004

Resumo

Since the discovery in the 1970s that dendritic abnormalities in cortical pyramidal neurons are the most consistent pathologic correlate of mental retardation, research has focused on how dendritic alterations are related to reduced intellectual ability. Due in part to obvious ethical problems and in part to the lack of fruitful methods to study neuronal circuitry in the human cortex, there is little data about the microanatomical contribution to mental retardation. The recent identification of the genetic bases of some mental retardation associated alterations, coupled with the technology to create transgenic animal models and the introduction of powerful sophisticated tools in the field of microanatomy, has led to a growth in the studies of the alterations of pyramidal cell morphology in these disorders. Studies of individuals with Down syndrome, the most frequent genetic disorder leading to mental retardation, allow the analysis of the relationships between cognition, genotype and brain microanatomy. In Down syndrome the crucial question is to define the mechanisms by which an excess of normal gene products, in interaction with the environment, directs and constrains neural maturation, and how this abnormal development translates into cognition and behaviour. In the present article we discuss mainly Down syndrome-associated dendritic abnormalities and plasticity and the role of animal models in these studies. We believe that through the further development of such approaches, the study of the microanatomical substrates of mental retardation will contribute significantly to our understanding of the mechanisms underlying human brain disorders associated with mental retardation. (C) 2004 Elsevier Ltd. All rights reserved.

Identificador

http://espace.library.uq.edu.au/view/UQ:72402

Idioma(s)

eng

Publicador

Elsevier

Palavras-Chave #Long-term Potentiation #Factor Messenger-rna #Rat Cerebral-cortex #Trisomy 16 Mouse #Dendritic Spines #Environmental Enrichment #Ts65dn Mouse #Alzheimers-disease #Mental-retardation #Gene-expression #C1 #270502 Neurobiology #780105 Biological sciences
Tipo

Journal Article