4.0 Article

Cocaine Causes Deficits in Radial Migration and Alters the Distribution of Glutamate and GABA Neurons in the Developing Rat Cerebral Cortex

Journal

SYNAPSE
Volume 65, Issue 1, Pages 21-34

Publisher

WILEY
DOI: 10.1002/syn.20814

Keywords

cocaine; GABAergic neurons; glutamate neurons; neocortical development; neural progenitor cells; cell migration

Categories

Funding

  1. NATIONAL INSTITUTE ON DRUG ABUSE [ZIADA000491] Funding Source: NIH RePORTER
  2. Intramural NIH HHS [Z01 DA000491-03] Funding Source: Medline

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Prenatal cocaine exposure induces cytoarchitectural changes in the embryonic neocortex; however, the biological mechanisms and type of cortical neurons involved in these changes are not known. Previously, we found that neural progenitor proliferation in the neocortical ventricular zone (VZ) is inhibited by cocaine; here, we examine the changes in cortical neurogenesis and migration of glutamate and GABA neurons induced by prenatal cocaine exposure. Pregnant rats received 20 mg/kg of cocaine intraperitoneally twice at an interval of 12 h during three periods of neocortical neurogenesis. Neocortical area and distribution of developing neurons were examined by counting Tuj1+, glutamate+, or GABA+ cells in different areas of the cerebral cortex. Cocaine decreased neocortical area by reducing the size of the Tuj1+ layer, but only when administered during early periods of neocortical neurogenesis. The number of glutamatergic neurons was increased in the VZ but was decreased in the outer cortical laminae. Although the number of GABA+ neurons in the VZ of both the neocortex and ganglionic eminences was unchanged, GABA+ cells decreased in all other neocortical laminae. Tangential migration of GABA+ cells was also disrupted by cocaine. These findings suggest that in utero cocaine exposure disturbs radial migration of neocortical neurons, possibly because of decreased radial glia guiding support through enhanced differentiation of neocortical VZ progenitors. Cocaine interrupts radial migration of both glutamatergic and GABAergic neurons within the neocortex, in addition to the tangential migration of GABAergic neurons from the subcortical telecephalon. This may result in abnormal neocortical cytoarchitecture and concomitant adverse functional effects. Synapse 65:21-34, 2011. Published 2010 Wiley-Liss, Inc.

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