Hnf1b haploinsufficiency differentially affects developmental target genes in a new renal cysts and diabetes mouse model

Author:

Niborski Leticia L.1,Paces-Fessy Mélanie1,Ricci Pierbruno1,Bourgeois Adeline1ORCID,Magalhães Pedro23,Kuzma-Kuzniarska Maria1ORCID,Lesaulnier Celine1,Reczko Martin4,Declercq Edwige1,Zürbig Petra2,Doucet Alain5,Umbhauer Muriel1,Cereghini Silvia1ORCID

Affiliation:

1. Sorbonne Université, CNRS, Institut de Biologie Paris Seine, Laboratoire de Biologie du Développement, IBPS, UMR7622, F-75005 Paris, France

2. Mosaiques Diagnostics, 30659 Hannover, Germany

3. Department of Pediatric Nephrology, Hannover Medical School, 30625 Hannover, Germany

4. Biomedical Sciences Research Center Alexander Fleming, Institute for Fundamental Biomedical Science, 16672 Athens, Greece

5. Sorbonne Université, Université Paris Descartes, UMRS 1138, CNRS, ERL 8228, Centre de Recherche des Cordeliers, F-75006 Paris, France

Abstract

ABSTRACT Heterozygous mutations in HNF1B cause the complex syndrome renal cysts and diabetes (RCAD), characterized by developmental abnormalities of the kidneys, genital tracts and pancreas, and a variety of renal, pancreas and liver dysfunctions. The pathogenesis underlying this syndrome remains unclear as mice with heterozygous null mutations have no phenotype, while constitutive/conditional Hnf1b ablation leads to more severe phenotypes. We generated a novel mouse model carrying an identified human mutation at the intron-2 splice donor site. Unlike heterozygous mice previously characterized, mice heterozygous for the splicing mutation exhibited decreased HNF1B protein levels and bilateral renal cysts from embryonic day 15, originated from glomeruli, early proximal tubules (PTs) and intermediate nephron segments, concurrently with delayed PT differentiation, hydronephrosis and rare genital tract anomalies. Consistently, mRNA sequencing showed that most downregulated genes in embryonic kidneys were primarily expressed in early PTs and the loop of Henle and involved in ion/drug transport, organic acid and lipid metabolic processes, while the expression of previously identified targets upon Hnf1b ablation, including cystic disease genes, was weakly or not affected. Postnatal analyses revealed renal abnormalities, ranging from glomerular cysts to hydronephrosis and, rarely, multicystic dysplasia. Urinary proteomics uncovered a particular profile predictive of progressive decline in kidney function and fibrosis, and displayed common features with a recently reported urine proteome in an RCAD pediatric cohort. Altogether, our results show that reduced HNF1B levels lead to developmental disease phenotypes associated with the deregulation of a subset of HNF1B targets. They further suggest that this model represents a unique clinical/pathological viable model of the RCAD disease.

Funder

GIS-Institut des Maladies Rares

Institut Clinique de la Souris

Agence National de la Recherche

Institut National de la Santé et de la Recherche Médicale

Seventh Framework Programme

Horizon 2020

Centre National de la Recherche Scientifique

Sorbonne Université

Innovative Training Network RENALTRACT

Publisher

The Company of Biologists

Subject

General Biochemistry, Genetics and Molecular Biology,Immunology and Microbiology (miscellaneous),Medicine (miscellaneous),Neuroscience (miscellaneous)

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