FB2026_01 , released March 12, 2026
FB2026_01 , released March 12, 2026
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Citation
Garschall, K., Dellago, H., Gáliková, M., Schosserer, M., Flatt, T., Grillari, J. (2017). Ubiquitous overexpression of the DNA repair factor dPrp19 reduces DNA damage and extends Drosophila life span.  NPJ Aging Mech. Dis. 3(): 5.
FlyBase ID
FBrf0235855
Publication Type
Research paper
Abstract
Mechanisms that ensure and maintain the stability of genetic information are fundamentally important for organismal function and can have a large impact on disease, aging, and life span. While a multi-layered cellular apparatus exists to detect and respond to DNA damage, various insults from environmental and endogenous sources continuously affect DNA integrity. Over time this can lead to the accumulation of somatic mutations, which is thought to be one of the major causes of aging. We have previously found that overexpression of the essential human DNA repair and splicing factor SNEV, also called PRP19 or hPso4, extends replicative life span of cultured human endothelial cells and impedes accumulation of DNA damage. Here, we show that adult-specific overexpression of dPrp19, the D. melanogaster ortholog of human SNEV/PRP19/hPso4, robustly extends life span in female fruit flies. This increase in life span is accompanied by reduced levels of DNA damage and improved resistance to oxidative and genotoxic stress. Our findings suggest that dPrp19 plays an evolutionarily conserved role in aging, life span modulation and stress resistance, and support the notion that superior DNA maintenance is key to longevity.
PubMed ID
PubMed Central ID
PMC5445577 (PMC) (EuropePMC)
Related Publication(s)
Erratum

Erratum: Ubiquitous overexpression of the DNA repair factor dPrp19 reduces DNA damage and extends Drosophila life span.
Garschall et al., 2017, NPJ Aging Mech. Dis. 3: 10 [FBrf0237268]

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Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    NPJ Aging Mech. Dis.
    Title
    NPJ aging and mechanisms of disease
    ISBN/ISSN
    2056-3973
    Data From Reference
    Alleles (4)
    Chemicals (2)
    Genes (2)
    Natural transposons (1)
    Insertions (3)
    Experimental Tools (1)
    Transgenic Constructs (4)