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GLUT9b- and ABCG2-mediated collecting duct urate transport uncovers a vasopressin-independent mechanism of renal water reabsorption
Mohamad Hadla, Jean Marc Mardirossian, Daniel G. Bichet, Abdul Hamid Borghol, Georges Abboud, Ahmad Ghanem, Eduardo Chini, Peter Harris, Vicente E. Torres, Seth L. Alper, Volker Vallon, Fouad T. Chebib
Mohamad Hadla, Jean Marc Mardirossian, Daniel G. Bichet, Abdul Hamid Borghol, Georges Abboud, Ahmad Ghanem, Eduardo Chini, Peter Harris, Vicente E. Torres, Seth L. Alper, Volker Vallon, Fouad T. Chebib
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Research Article Cell biology Nephrology

GLUT9b- and ABCG2-mediated collecting duct urate transport uncovers a vasopressin-independent mechanism of renal water reabsorption

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Abstract

Renal water reabsorption is classically regulated by vasopressin V2 receptor (V2R) signaling through cyclic AMP and protein kinase A, driving apical accumulation of aquaporin-2 (AQP2). However, collecting duct water handling is also modulated by vasopressin-independent mechanisms. Here, we examined intracellular soluble urate as a vasopressin-independent regulator of AQP2 trafficking. Intracellular urate accumulation in collecting duct cells was mediated by enhanced apical urate uptake via GLUT9b and reduced apical urate efflux through ABCG2, triggering phosphodiesterase-4 activation, reduced cAMP, and downstream AMP-activated protein kinase (AMPK) activation. The resulting AQP2 accumulation at the apical membrane was independent of V2R signaling, required ongoing endocytosis, and was associated with features of postendocytic apical trafficking of internalized AQP2. In vivo ABCG2 inhibition with probenecid increased apical AQP2 abundance and markedly attenuated tolvaptan-induced polyuria in both wild-type and Pkd1RC/RC autosomal dominant polycystic kidney disease (ADPKD) mice in a uricase-independent manner while preserving tolvaptan’s ADPKD-modifying efficacy. In a phase II trial with tolvaptan-treated patients with ADPKD, probenecid reduced urine volume and nocturia frequency. Together, these findings support a vasopressin-independent urate/AMPK/AQP2 pathway that regulates renal water handling and, in a preclinical ADPKD model, can uncouple cyst growth attenuation from the dose-limiting aquaretic effects of V2R antagonism.

Authors

Mohamad Hadla, Jean Marc Mardirossian, Daniel G. Bichet, Abdul Hamid Borghol, Georges Abboud, Ahmad Ghanem, Eduardo Chini, Peter Harris, Vicente E. Torres, Seth L. Alper, Volker Vallon, Fouad T. Chebib

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Figure 4

Urate-induced AQP2 trafficking is potentiated by inhibition of ABCG2-mediated efflux.

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Urate-induced AQP2 trafficking is potentiated by inhibition of ABCG2-med...
(A) Confocal images of AQP2-GFP showing that Abcg2 knockdown (KD) induced apical AQP2 accumulation. (B) Normalized apical-to-basal AQP2-GFP FI ratios. (C) Immunoblot of ABCG2 in wild-type and Abcg2-KD cells. Noncontiguous lanes from the same gel are shown. (D) Densitometric quantitation of Abcg2 KD as in C. (E and F) Intracellular urate levels in (E) Abcg2 KD vs. wild-type cells and (F) wild-type cells treated for 1 hour with Ko143 (1 μM) or probenecid (PB, 100 μM). (G) Immunoblot of surface-biotinylated AQP2-GFP following Ko143 or PB treatment. (H) Densitometric quantitation showing increased membrane AQP2 after Ko143 or PB. Urate treatments were in FBS-free medium. Data are means ± SD; n ≥ 3. Unpaired t test (D and E), 2-way ANOVA with Bonferroni’s correction (B), and 1-way ANOVA with Dunnett’s correction (F and H). *P < 0.05, **P < 0.01, ***P < 0.001. Scale bar, 25 μm.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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