Literature DB >> 12379251

Hippocampal heterotopia with molecular and electrophysiological properties of neocortical neurons.

P A Castro1, S J Pleasure, S C Baraban.   

Abstract

Cortical malformations resulting from aberrant brain development can be associated with mental retardation, dyslexia, and intractable forms of epilepsy. Despite emerging interest in the pathology and etiology of cortical malformations, little is known about the phenotype of cells within these lesions. In utero exposure to the DNA methylating agent methylazoxymethanol acetate (MAM) during a critical stage in neurodevelopment results in animals with distinct clusters of displaced neurons in hippocampus, i.e. nodular heterotopia. Here we examined the molecular and electrophysiological properties of cells within hippocampal heterotopia using rats exposed to MAM during gestation. Molecular analysis revealed that heterotopic cells do not express mRNA markers normally found in hippocampal pyramidal cells or dentate granule cells (SCIP, Math-2, Prox-1, neuropilin-2). In contrast, Id-2 mRNA, normally abundant in Layer II-III supragranular neocortical neurons but not in CA1 pyramidal neurons, was prominently expressed in hippocampal heterotopia. Current-clamp analysis of the firing properties of heterotopic neurons revealed a striking similarity with supragranular cortical neurons. In particular, both cells were characterized by small hyperpolarizing 'sag' potentials, high input resistance values, slow spike-train afterhyperpolarizations, and the absence of a depolarizing afterpotential. Normotopic CA1 pyramidal neurons (e.g. pyramidal cells with normal lamination adjacent to a heterotopia) in the MAM brain exhibited molecular and electrophysiological properties that were nearly identical to those of age-matched CA1 pyramidal neurons from control rats. We conclude that neuronal heterotopiae in the hippocampus of MAM-exposed rats are comprised of neurons with a Layer II-III supragranular cortex phenotype. The MAM model, therefore, may serve as a useful tool in examination of the factors influencing aberrant brain development and epilepsy.

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Year:  2002        PMID: 12379251     DOI: 10.1016/s0306-4522(02)00296-8

Source DB:  PubMed          Journal:  Neuroscience        ISSN: 0306-4522            Impact factor:   3.590


  5 in total

1.  Embryonic and early postnatal abnormalities contributing to the development of hippocampal malformations in a rodent model of dysplasia.

Authors:  Mercedes Paredes; Samuel J Pleasure; Scott C Baraban
Journal:  J Comp Neurol       Date:  2006-03-01       Impact factor: 3.215

2.  Disruption of neuronal migration by RNAi of Dyx1c1 results in neocortical and hippocampal malformations.

Authors:  Glenn D Rosen; Jilin Bai; Yu Wang; Christopher G Fiondella; Steven W Threlkeld; Joseph J LoTurco; Albert M Galaburda
Journal:  Cereb Cortex       Date:  2007-01-11       Impact factor: 5.357

3.  Early cerebrovascular and parenchymal events following prenatal exposure to the putative neurotoxin methylazoxymethanol.

Authors:  Stefania Bassanini; Kerri Hallene; Giorgio Battaglia; Adele Finardi; Stefano Santaguida; Marilyn Cipolla; Damir Janigro
Journal:  Neurobiol Dis       Date:  2007-03-03       Impact factor: 5.996

4.  Morphological and functional characterization of human induced pluripotent stem cell-derived neurons (iCell Neurons) in defined culture systems.

Authors:  Bonnie J Berry; Nesar Akanda; Alec S T Smith; Christopher J Long; Mark T Schnepper; Xiufang Guo; James J Hickman
Journal:  Biotechnol Prog       Date:  2015-09-11

5.  Complex network analysis of CA3 transcriptome reveals pathogenic and compensatory pathways in refractory temporal lobe epilepsy.

Authors:  Silvia Yumi Bando; Filipi Nascimento Silva; Luciano da Fontoura Costa; Alexandre V Silva; Luciana R Pimentel-Silva; Luiz Hm Castro; Hung-Tzu Wen; Edson Amaro; Carlos Alberto Moreira-Filho
Journal:  PLoS One       Date:  2013-11-21       Impact factor: 3.240

  5 in total

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