FB2026_01 , released March 12, 2026
FB2026_01 , released March 12, 2026
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Citation
Gujar, M.R., Gao, Y., Teng, X., Deng, Q., Lin, K.Y., Tan, Y.S., Toyama, Y., Wang, H. (2023). Golgi-dependent reactivation and regeneration of Drosophila quiescent neural stem cells.  Dev. Cell 58(19): 1933--1949.e5.
FlyBase ID
FBrf0257747
Publication Type
Research paper
Abstract
The ability of stem cells to switch between quiescent and proliferative states is crucial for maintaining tissue homeostasis and regeneration. In Drosophila, quiescent neural stem cells (qNSCs) extend a primary protrusion, a hallmark of qNSCs. Here, we have found that qNSC protrusions can be regenerated upon injury. This regeneration process relies on the Golgi apparatus that acts as the major acentrosomal microtubule-organizing center in qNSCs. A Golgi-resident GTPase Arf1 and its guanine nucleotide exchange factor Sec71 promote NSC reactivation and regeneration via the regulation of microtubule growth. Arf1 physically associates with its new effector mini spindles (Msps)/XMAP215, a microtubule polymerase. Finally, Arf1 functions upstream of Msps to target the cell adhesion molecule E-cadherin to NSC-neuropil contact sites during NSC reactivation. Our findings have established Drosophila qNSCs as a regeneration model and identified Arf1/Sec71-Msps pathway in the regulation of microtubule growth and NSC reactivation.
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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
    Alleles (40)
    Genes (17)
    Physical Interactions (3)
    Cell Lines (1)
    Natural transposons (1)
    Experimental Tools (6)
    Transgenic Constructs (38)