Clinico-pathologic findings in medullary cystic kidney disease type 2
PEDIATRIC NEPHROLOGY
Authors: Bleyer, AJ; Hart, TC; Willingham, MC; Iskandar, SS; Gorry, MC; Trachtman, H
Abstract
Medullary cystic kidney disease type 2 is an uncommon autosomal dominant condition characterized by juvenile onset hyperuricemia, precocious gout and chronic renal failure progressing to end-stage renal disease in the 4th through 7th decades of life. A family suffering from this condition is described. The patient in the index case presented with renal insufficiency as a child. A renal biopsy revealed tubular atrophy, and immunohistochemical staining of the tissue for uromodulin (Tamm Horsfall protein) revealed dense deposits in renal tubular cells. Genetic testing revealed a single nucleotide mutation (c.899G>A) resulting in an exchange of a cysteine residue for tyrosine (C300Y). Medullary cystic kidney disease type 2 (also known as uromodulin-associated kidney disease) likely represents a form of endoplasmic reticulum storage disease, with deposition of the abnormal uromodulin protein in the endoplasmic reticulum, leading to tubular cell atrophy and death.
Common noncoding UMOD gene variants induce salt-sensitive hypertension and kidney damage by increasing uromodulin expression
NATURE MEDICINE
Authors: Trudu, Matteo; Janas, Sylvie; Lanzani, Chiara; Debaix, Huguette; Schaeffer, Celine; Ikehata, Masami; Citterio, Lorena; Demaretz, Sylvie; Trevisani, Francesco; Ristagno, Giuseppe; Glaudemans, Bob; Laghmani, Kamel; Dell'Antonio, Giacomo; Loffing, Johannes; Rastaldi, Maria P.; Manunta, Paolo; Devuyst, Olivier; Rampoldi, Luca
Abstract
Hypertension and chronic kidney disease (CKD) are complex traits representing major global health problems(1,2). Multiple genome-wide association studies have identified common variants in the promoter of the UMOD gene(3-9), which encodes uromodulin, the major protein secreted in normal urine, that cause independent susceptibility to CKD and hypertension. Despite compelling genetic evidence for the association between UMOD risk variants and disease susceptibility in the general population, the underlying biological mechanism is not understood. Here, we demonstrate that UMOD risk variants increased UMOD expression in vitro and in vivo. Uromodulin overexpression in transgenic mice led to salt-sensitive hypertension and to the presence of age-dependent renal lesions similar to those observed in elderly individuals homozygous for UMOD promoter risk variants. The link between uromodulin and hypertension is due to activation of the renal sodium cotransporter NKCC2. We demonstrated the relevance of this mechanism in humans by showing that pharmacological inhibition of NKCC2 was more effective in lowering blood pressure in hypertensive patients who are homozygous for UMOD promoter risk variants than in other hypertensive patients. Our findings link genetic susceptibility to hypertension and CKD to the level of uromodulin expression and uromodulin's effect on salt reabsorption in the kidney. These findings point to uromodulin as a therapeutic target for lowering blood pressure and preserving renal function.