Dopamine Modulates Cell Cycle in the Lateral Ganglionic Eminence
Open Access
- 1 April 2003
- journal article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 23 (7) , 2840-2850
- https://doi.org/10.1523/jneurosci.23-07-02840.2003
Abstract
Dopamine is a neuromodulator the functions of which in the regulation of complex behaviors such as mood, motivation, and attention are well known. Dopamine appears in the brain early in the embryonic period when none of those behaviors is robust, raising the possibility that dopamine may influence brain development. The effects of dopamine on specific developmental processes such as neurogenesis are not fully characterized. The neostriatum is a dopamine-rich region of the developing and mature brain. If dopamine influenced neurogenesis, the effects would likely be pronounced in the neostriatum. Therefore, we examined whether dopamine influenced neostriatal neurogenesis by influencing the cell cycle of progenitor cells in the lateral ganglionic eminence (LGE), the neuroepithelial precursor of the neostriatum. We show that dopamine arrives in the LGE via the nigrostriatal pathway early in the embryonic period and that neostriatal neurogenesis progresses in a dopamine-rich milieu. Dopamine D1-like receptor activation reduces entry of progenitor cells from the G1- to S-phase of the cell cycle, whereas D2-like receptor activation produces the opposite effects by promoting G1- to S-phase entry. D1-like effects are prominent in the ventricular zone, and D2-like effects are prominent in the subventricular zone. The overall effects of dopamine on the cell cycle are D1-like effects, most likely because of the preponderance of D1-like binding sites in the embryonic neostriatum. These data reveal a novel developmental role for dopamine and underscore the relevance of dopaminergic signaling in brain development.Keywords
This publication has 68 references indexed in Scilit:
- Developmental regulation of the effects of fibroblast growth factor‐2 and 1‐octanol on neuronogenesis: Implications for a hypothesis relating to mitogen–antimitogen oppositionJournal of Neuroscience Research, 2002
- Emerging principles of altered neural circuitry in schizophreniaBrain Research Reviews, 2000
- Proliferative Behavior of the Murine Cerebral Wall in Tissue Culture: Cell Cycle Kinetics and CheckpointsExperimental Neurology, 1999
- The PACAP Ligand/Receptor System Regulates Cerebral Cortical NeurogenesisaAnnals of the New York Academy of Sciences, 1998
- The Mathematics of Neocortical NeuronogenesisDevelopmental Neuroscience, 1997
- GABA and glutamate depolarize cortical progenitor cells and inhibit DNA synthesisNeuron, 1995
- Drug addiction: A model for the molecular basis of neural plasticityNeuron, 1993
- Identification of programmed cell death in situ via specific labeling of nuclear DNA fragmentation.The Journal of cell biology, 1992
- Bromodeoxyuridine immunohistochemical determination of the lengths of the cell cycle and the DNA-synthetic phase for an anatomically defined populationJournal of Neurocytology, 1989
- Stability of dopamine in an in vitro incubation system using Medium 199Canadian Journal of Physiology and Pharmacology, 1984