FB2026_02 , released June 18, 2026
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Citation
Polan, D.M., Alansari, M., Lee, B., Grewal, S.S. (2020). Early-life hypoxia alters adult physiology and reduces stress resistance and lifespan in Drosophila.  J. Exp. Biol. 223(22): jeb226027.
FlyBase ID
FBrf0247323
Publication Type
Research paper
Abstract
In many animals, short-term fluctuations in environmental conditions in early life often exert long-term effects on adult physiology. In Drosophila, one ecologically relevant environmental variable is hypoxia. Drosophila larvae live on rotting, fermenting food rich in microorganisms, an environment characterized by low ambient oxygen. They have therefore evolved to tolerate hypoxia. Although the acute effects of hypoxia in larvae have been well studied, whether early-life hypoxia affects adult physiology and fitness is less clear. Here, we show that Drosophila exposed to hypoxia during their larval period subsequently show reduced starvation stress resistance and shorter lifespan as adults, with these effects being stronger in males. We find that these effects are associated with reduced whole-body insulin signaling but elevated TOR kinase activity, a manipulation known to reduce lifespan. We also identify a sexually dimorphic effect of larval hypoxia on adult nutrient storage and mobilization. Thus, we find that males, but not females, show elevated levels of lipids and glycogen. Moreover, we see that both males and females exposed to hypoxia as larvae show defective lipid mobilization upon starvation stress as adults. These data demonstrate how early-life hypoxia can exert persistent, sexually dimorphic, long-term effects on Drosophila adult physiology and lifespan.
PubMed ID
PubMed Central ID
PMC10668336 (PMC) (EuropePMC)
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Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    J. Exp. Biol.
    Title
    Journal of Experimental Biology
    Publication Year
    1930-
    ISBN/ISSN
    0022-0949
    Data From Reference
    Genes (5)