Regulation of Self-renewal and Differentiation in the Drosophila Nervous System
Author(s) -
Tony D. Southall,
Boris Egger,
Katrina S. Gold,
Andrea H. Brand
Publication year - 2008
Publication title -
cold spring harbor symposia on quantitative biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.615
H-Index - 77
eISSN - 1943-4456
pISSN - 0091-7451
DOI - 10.1101/sqb.2008.73.051
Subject(s) - biology , cell division , asymmetric cell division , stem cell , embryonic stem cell , microbiology and biotechnology , neural stem cell , nervous system , drosophila (subgenus) , developmental biology , cellular differentiation , neuroscience , cell , genetics , gene
Stem cells can divide symmetrically to generate two similar daughter cells and expand the stem cell pool or asymmetrically to self-renew and generate differentiating daughter cells. The proper balance between symmetric and asymmetric division is critical for the generation and subsequent repair of tissues. Furthermore, unregulated stem cell division has been shown to result in tumorous overgrowth. The Drosophila nervous system has proved to be a fruitful model system for studying the biology of neural stem cell division and uncovering the molecular mechanisms that, when disrupted, can lead to tumor formation. We are using the Drosophila embryonic and larval nervous systems as models to study the regulation of symmetric and asymmetric stem cell division.
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