miR-17∼92 miRNA cluster promotes kidney cyst growth in polycystic kidney disease

Author:

Patel Vishal1,Williams Darren1,Hajarnis Sachin1,Hunter Ryan1,Pontoglio Marco2,Somlo Stefan3,Igarashi Peter14

Affiliation:

1. Departments of aInternal Medicine and

2. Départment Génétique et Développement, Expression Génique, Développement et Maladies Equipe 26, Institut National de la Santé et de la Recherche Médicale Unité 567, Centre National de la Recherche Scientifique Unité Mixte de Recherche 8104, Université Paris-Descartes Institut Cochin, 75014 Paris, France; and

3. Departments of Internal Medicine and Genetics, Yale University School of Medicine, New Haven, CT 06516

4. Pediatrics, University of Texas Southwestern Medical Center, Dallas, TX 75390;

Abstract

Polycystic kidney disease (PKD), the most common genetic cause of chronic kidney failure, is characterized by the presence of numerous, progressively enlarging fluid-filled cysts in the renal parenchyma. The cysts arise from renal tubules and are lined by abnormally functioning and hyperproliferative epithelial cells. Despite recent progress, no Food and Drug Administration-approved therapy is available to retard cyst growth. MicroRNAs (miRNAs) are short noncoding RNAs that inhibit posttranscriptional gene expression. Dysregulated miRNA expression is observed in PKD, but whether miRNAs are directly involved in kidney cyst formation and growth is not known. Here, we show that miR-17∼92, an oncogenic miRNA cluster, is up-regulated in mouse models of PKD. Kidney-specific transgenic overexpression of miR-17∼92 produces kidney cysts in mice. Conversely, kidney-specific inactivation of miR-17∼92 in a mouse model of PKD retards kidney cyst growth, improves renal function, and prolongs survival. miR-17∼92 may mediate these effects by promoting proliferation and through posttranscriptional repression of PKD genes Pkd1 , Pkd2 , and hepatocyte nuclear factor- 1 β. These studies demonstrate a pathogenic role of miRNAs in mouse models of PKD and identify miR-17∼92 as a therapeutic target in PKD. Our results also provide a unique hypothesis for disease progression in PKD involving miRNAs and regulation of PKD gene dosage.

Publisher

Proceedings of the National Academy of Sciences

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