FB2024_03 , released June 25, 2024
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Citation
Hirata, T., Cabrero, P., Berkholz, D.S., Bondeson, D.P., Ritman, E.L., Thompson, J.R., Dow, J.A., Romero, M.F. (2012). In vivo Drosophilia genetic model for calcium oxalate nephrolithiasis.  Am. J. Physiol. Renal Physiol. 303(11): F1555--F1562.
FlyBase ID
FBrf0220104
Publication Type
Research paper
Abstract
Nephrolithiasis is a major public health problem with a complex and varied etiology. Most stones are composed of calcium oxalate (CaOx), with dietary excess a risk factor. Because of complexity of mammalian system, the details of stone formation remain to be understood. Here we have developed a nephrolithiasis model using the genetic model Drosophila melanogaster, which has a simple, transparent kidney tubule. Drosophilia reliably develops CaOx stones upon dietary oxalate supplementation, and the nucleation and growth of microliths can be viewed in real time. The Slc26 anion transporter dPrestin (Slc26a5/6) is strongly expressed in Drosophilia kidney, and biophysical analysis shows that it is a potent oxalate transporter. When dPrestin is knocked down by RNAi in fly kidney, formation of microliths is reduced, identifying dPrestin as a key player in oxalate excretion. CaOx stone formation is an ancient conserved process across >400 My of divergent evolution (fly and human), and from this study we can conclude that the fly is a good genetic model of nephrolithiasis.
PubMed ID
PubMed Central ID
PMC3532482 (PMC) (EuropePMC)
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Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    Am. J. Physiol. Renal Physiol.
    Title
    American journal of physiology. Renal physiology
    Publication Year
    1997-
    ISBN/ISSN
    1931-857X 1522-1466
    Data From Reference
    Alleles (3)
    Chemicals (1)
    Genes (2)
    Human Disease Models (1)
    Insertions (1)
    Transgenic Constructs (2)