FB2026_01 , released March 12, 2026
FB2026_01 , released March 12, 2026
Reference Report
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Citation
Liu, K., Shen, D., Shen, J., Gao, S.M., Li, B., Wong, C., Feng, W., Song, Y. (2017). The Super Elongation Complex Drives Neural Stem Cell Fate Commitment.  Dev. Cell 40(6): 537--551.e6.
FlyBase ID
FBrf0235091
Publication Type
Research paper
Abstract
Asymmetric stem cell division establishes an initial difference between a stem cell and its differentiating sibling, critical for maintaining homeostasis and preventing carcinogenesis. Yet the mechanisms that consolidate and lock in such initial fate bias remain obscure. Here, we use Drosophila neuroblasts to demonstrate that the super elongation complex (SEC) acts as an intrinsic amplifier to drive cell fate commitment. SEC is highly expressed in neuroblasts, where it promotes self-renewal by physically associating with Notch transcription activation complex and enhancing HES (hairy and E(spl)) transcription. HES in turn upregulates SEC activity, forming an unexpected self-reinforcing feedback loop with SEC. SEC inactivation leads to neuroblast loss, whereas its forced activation results in neural progenitor dedifferentiation and tumorigenesis. Our studies unveil an SEC-mediated intracellular amplifier mechanism in ensuring robustness and precision in stem cell fate commitment and provide mechanistic explanation for the highly frequent association of SEC overactivation with human cancers.
Graphical Abstract
Obtained with permission from Cell Press.
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Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    Dev. Cell
    Title
    Developmental Cell
    Publication Year
    2001-
    ISBN/ISSN
    1534-5807 1878-1551
    Data From Reference
    Aberrations (1)
    Alleles (41)
    Gene Groups (1)
    Genes (24)
    Physical Interactions (7)
    Polypeptides (1)
    Sequence Features (1)
    Natural transposons (1)
    Insertions (3)
    Experimental Tools (10)
    Transgenic Constructs (34)
    Transcripts (1)