FB2026_02 , released June 18, 2026
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Citation
Tsoumpekos, G., Nemetschke, L., Knust, E. (2018). Drosophila Big bang regulates the apical cytocortex and wing growth through junctional tension.  J. Cell Biol. 217(3): 1033--1045.
FlyBase ID
FBrf0238311
Publication Type
Research paper
Abstract
Growth of epithelial tissues is regulated by a plethora of components, including signaling and scaffolding proteins, but also by junctional tension, mediated by the actomyosin cytoskeleton. However, how these players are spatially organized and functionally coordinated is not well understood. Here, we identify the Drosophila melanogaster scaffolding protein Big bang as a novel regulator of growth in epithelial cells of the wing disc by ensuring proper junctional tension. Loss of big bang results in the reduction of the regulatory light chain of nonmuscle myosin, Spaghetti squash. This is associated with an increased apical cell surface, decreased junctional tension, and smaller wings. Strikingly, these phenotypic traits of big bang mutant discs can be rescued by expressing constitutively active Spaghetti squash. Big bang colocalizes with Spaghetti squash in the apical cytocortex and is found in the same protein complex. These results suggest that in epithelial cells of developing wings, the scaffolding protein Big bang controls apical cytocortex organization, which is important for regulating cell shape and tissue growth.
PubMed ID
PubMed Central ID
PMC5839783 (PMC) (EuropePMC)
Related Publication(s)
Note

The Big Bang of tissue growth: Apical cell constriction turns into tissue expansion.
Janody, 2018, J. Cell Biol. 217(3): 807--808 [FBrf0238366]

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Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    J. Cell Biol.
    Title
    Journal of Cell Biology
    Publication Year
    1966-
    ISBN/ISSN
    0021-9525
    Data From Reference
    Aberrations (1)
    Alleles (10)
    Genes (5)
    Physical Interactions (1)
    Insertions (2)
    Transgenic Constructs (5)