Search bioRxiv⌕ Search

Biology subjects

Al-Shebel, A.

Publications and source records attributed to Al-Shebel, A..

2 recordsLinked to original sources

Kidney-specific Wdr72 deletion leads to incomplete distal renal tubular acidosis through impaired V-ATPase B1 subunit localization

BackgroundDistal renal tubular acidosis (dRTA) is a rare kidney disorder characterized by impaired urinary acidification due to defective proton secretion in type A intercalated cells of the collecting duct. Recently, pathogenic variants in the human gene encoding the WD Repeat Domain 72 protein (WDR72) have been reported in patients with dRTA, yet the physiological role of WDR72 in the kidney remains unknown. MethodsTo elucidate the renal function of Wdr72, we generated a kidney-specific knockout mouse model (Wdr72fl/fl;Pax8-Cre+) and assessed acid-base homeostasis under baseline, acute, and chronic acid loading. ResultsWdr72fl/fl;Pax8-Cre+ mice displayed persistently elevated urinary pH, reduced titratable acid and net acid excretion under basal and acid-loaded conditions, consistent with incomplete dRTA. While the systemic pH remained unchanged compared to controls under standard diet, chronic acid load led to mild hyperchloremic, hypokalemic metabolic acidosis. Notably, urinary NH excretion was increased upon acid loading accompanied by upregulation of key ammoniagenesis enzymes, which was detected even under basal conditions, consistent with a compensatory activation of proximal tubular acid excretion pathways. The total and membranous abundance of the V-ATPase B1 subunit decreased markedly within the kidney, despite unchanged transcript levels, suggesting a defect in V-ATPase trafficking or assembly. In addition, morphometric analyses revealed an increased proportion of type A intercalating cells that failed to expand upon acid loading, indicating defective adaptive plasticity. ConclusionsKidney-specific Wdr72 deletion impairs distal urinary acidification through reduced V-ATPase abundance and membranous targeting, altered intercalated cell morphology, and limited adaptive remodeling, resulting in incomplete dRTA. Upregulation of renal ammoniagenesis partially compensates the acidification defect. These findings highlight WDR72 as a key regulator of distal nephron acid-base homeostasis and offer mechanistic insight into WDR72-associated dRTA. Key PointsO_LIKidney-specific deletion of Wdr72 reduced Atp6v1b1 membranous localization in intercalated cells. C_LIO_LIKidney-specific Wdr72 knockout altered intercalated cell morphology, and limited their adaptive remodeling. C_LIO_LIThe lack of the renal Wdr72 resulted in incomplete dRTA, compensated partially by elevated ammoniagenesis. C_LI

molecular biology↗

TGR5-mediated Ca2+ signaling in cholangiocytes

The Bile Acid TGR5 receptor is well known to active the cAMP pathways leading to CFTR activation and Cl- ions secretion, needed for bile alkalinization and hydration. However, during cystic fibrosis development, only 10 to 15% of the patients present liver defect due to bile duct disorders, meaning that another process should compensate for the loss of CFTR activity. Interestingly, TGR5 stimulation has also been reported to mobilize Ca2+ ions. Using normal human cholangiocytes and cholangiocarcinoma cell lines, we confirmed by using a specific agonist, that TGR5 stimulation induced a Ca2+ release from the endoplasmic reticulum and an influx of extracellular Ca2+ ions. Next, this Ca2+ mobilization allows an ATP (and UTP) release, leading to the activation of P2Y receptors, reinforcing this Ca2+ mobilization. This study shows that activation of the BA receptor TGR5 has the capacity to induce the two main intracellular pathways, cAMP and IP3-Ca2+ in cholangiocytes. From our data, we speculate that the pathway we described will allow activation of the Ca2+-activated Cl- channels TMEM16A, in parallel to CFTR in non-CF cells, or to compensate in part or in totality the loss of CFTR in CF patients. HIGHLIGHTSO_LIBile acid receptor TGR5 induces Ca2+ mobilization in cholangiocytes C_LIO_LICa2+ ions come from the endoplasmic reticulum and from the extracellular medium C_LIO_LIP2Y receptors are trans-activated by TGR5 and reinforce the Ca2+ mobilization C_LIO_LIThis Ca2+ pathways might compensate the CFTR defect in CF patients C_LI

physiology↗