Distinct behaviors of neural stem and progenitor cells underlie cortical neurogenesis
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- 20 February 2008
- journal article
- research article
- Published by Wiley in Journal of Comparative Neurology
- Vol. 508 (1), 28-44
- https://doi.org/10.1002/cne.21669
Abstract
Neocortical precursor cells undergo symmetric and asymmetric divisions while producing large numbers of diverse cortical cell types. In Drosophila, cleavage plane orientation dictates the inheritance of fate‐determinants and the symmetry of newborn daughter cells during neuroblast cell divisions. One model for predicting daughter cell fate in the mammalian neocortex is also based on cleavage plane orientation. Precursor cell divisions with a cleavage plane orientation that is perpendicular with respect to the ventricular surface (vertical) are predicted to be symmetric, while divisions with a cleavage plane orientation that is parallel to the surface (horizontal) are predicted to be asymmetric neurogenic divisions. However, analysis of cleavage plane orientation at the ventricle suggests that the number of predicted neurogenic divisions might be insufficient to produce large amounts of cortical neurons. To understand factors that correlate with the symmetry of cell divisions, we examined rat neocortical precursor cells in situ through real‐time imaging, marker analysis, and electrophysiological recordings. We find that cleavage plane orientation is more closely associated with precursor cell type than with daughter cell fate, as commonly thought. Radial glia cells in the VZ primarily divide with a vertical orientation throughout cortical development and undergo symmetric or asymmetric self‐renewing divisions depending on the stage of development. In contrast, most intermediate progenitor cells divide in the subventricular zone with a horizontal orientation and produce symmetric daughter cells. We propose a model for predicting daughter cell fate that considers precursor cell type, stage of development, and the planar segregation of fate determinants. J. Comp. Neurol. 508:28–44, 2008.Keywords
This publication has 87 references indexed in Scilit:
- Pax6 controls cerebral cortical cell number by regulating exit from the cell cycle and specifies cortical cell identity by a cell autonomous mechanismDevelopmental Biology, 2006
- Niche-Independent Symmetrical Self-Renewal of a Mammalian Tissue Stem CellPLoS Biology, 2005
- Molecular control of cell polarity and asymmetric cell division in Drosophila neuroblastsCurrent Opinion in Cell Biology, 2005
- Cortical radial glial cells in human fetuses: Depth‐correlated transformation into astrocytesJournal of Neurobiology, 2003
- Size distribution of retrovirally marked lineages matches prediction from population measurements of cell cycle behaviorJournal of Neuroscience Research, 2002
- Visualization of mitotic radial glial lineage cells in the developing rat brain by Cdc2 kinase-phosphorylated vimentinGlia, 1998
- Asymmetric cell division and neurogenesisCurrent Opinion in Genetics & Development, 1996
- Cleavage orientation and the asymmetric inheritance of notchl immunoreactivity in mammalian neurogenesisCell, 1995
- Mitotic cycling of radial glial cells of the fetal murine cerebral wall: a combined autoradiographic and immunohistochemical studyDevelopmental Brain Research, 1988
- Quantitative studies of mitoses in fetal rat brain: orientations of the spindlesDevelopmental Brain Research, 1987