FB2026_03 , released September 17, 2026
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Citation
Reynolds, C.J., Gillen, C.M., Burke, R., Tsering, Y., Loucks, E., Judd-Mole, S., Dow, J.A.T., Romero, M.F. (2024). Drosophila ClC-c Is a Homolog of Human CLC-5 and a New Model for Dent Disease Type 1.  Kidney360 5(3): 414--426.
FlyBase ID
FBrf0259168
Publication Type
Research paper
Abstract
Background: Drosophila serve as exceptional alternative models for in vivo and ex vivo research and may provide an avenue for in-depth investigation for human ClC-5 and Dent disease type 1 (DD1). The Drosophila ClC-c (CG5284) has sequence homology with human ClC-5 and is hypothesized to encompass similar functional and phenotypical roles with ClC-5 and variants that cause DD1. Methods: Ion transport function and activity of Drosophila ClC-c and homologous DD1 variants were assessed by voltage clamp electrophysiology. Membrane localization was demonstrated in Drosophila expressing a GFP-labeled construct of ClC-c. Genetic expression of an RNAi against ClC-c mRNA was used to generate a knockdown fly that serves as a DD1 disease model. Tubule secretion of cations and protein were assessed, as well as the crystal formation in the Malpighian tubules. Results: Voltage clamp experiments demonstrate that ClC-c is voltage-gated with Cl−-dependent and pH-sensitive currents. Inclusion of homologous DD1 mutations pathogenic variants (S393L, R494W, and Q777X) impairs ClC-c ion transport activity. In vivo expression of ClC-c-eGFP in Malpighian tubules reveals that the membrane transporter localizes to the apical membrane and nearby cytosolic regions. RNAi knockdown of ClC-c (48% decreased mRNA expression) causes increased secretion of both urinary protein and Ca2+ and increased occurrence of spontaneous tubule crystals. Conclusions: Drosophila ClC-c shows orthologous function and localization to human ClC-5. Thus, Drosophila and ClC-c regulation may be useful for future investigations of Cl− transport, Ca2+ homeostasis, and urinary protein loss in DD1.
PubMed ID
PubMed Central ID
PMC11000744 (PMC) (EuropePMC)
Related Publication(s)
Note

Modeling Dent Disease Type 1 in Flies.
Anglani and Priante, 2024, Kidney360 5(5): 642--644 [FBrf0259662]

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Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    Kidney360
    Title
    Kidney360
    ISBN/ISSN
    2641-7650
    Data From Reference
    Alleles (4)
    Chemicals (1)
    Genes (2)
    Human Disease Models (1)
    Natural transposons (1)
    Insertions (1)
    Experimental Tools (2)
    Transgenic Constructs (3)