Multisystem involvement, defective lysosomes and impaired autophagy in a novel rat model of nephropathic cystinosis

Author:

Krohn Patrick1,Rega Laura Rita2,Harvent Marianne1,Festa Beatrice Paola1,Taranta Anna2,Luciani Alessandro1,Dewulf Joseph34,Cremonesi Alessio5,Camassei Francesca Diomedi6,Hanson James V M7,Gerth-Kahlert Christina7,Emma Francesco28,Berquez Marine1ORCID,Devuyst Olivier19

Affiliation:

1. Institute of Physiology , University of Zurich, Zurich 8057 , Switzerland

2. Renal Diseases Research Unit , Genetics and Rare Diseases Research Area, Bambino Gesù Children’s Hospital, IRCCS, Rome 00165 , Italy

3. Department of Laboratory Medicine , Cliniques universitaires Saint Luc, UCLouvain, Brussels 1200 , Belgium

4. Department of Biochemistry , de Duve Institute, UCLouvain, Brussels 1200 , Belgium

5. Division of Clinical Chemistry and Biochemistry , University Children’s Hospital Zurich, Zurich 8032 , Switzerland

6. Department of Laboratories–Pathology Unit , Bambino Gesù Children’s Hospital, Rome 00165 , Italy

7. Department of Ophthalmology , University Hospital Zurich and University of Zurich, Zurich 8091 , Switzerland

8. Department of Pediatric Subspecialties , Division of Nephrology, Children’s Hospital Bambino Gesù, IRCCS, Rome 00165 , Italy

9. Institut de Recherche Expérimentale et Clinique , UCLouvain, Brussels , Belgium

Abstract

Abstract Recessive mutations in the CTNS gene encoding the lysosomal transporter cystinosin cause cystinosis, a lysosomal storage disease leading to kidney failure and multisystem manifestations. A Ctns knockout mouse model recapitulates features of cystinosis, but the delayed onset of kidney manifestations, phenotype variability and strain effects limit its use for mechanistic and drug development studies. To provide a better model for cystinosis, we generated a Ctns knockout rat model using CRISPR/Cas9 technology. The Ctns−/− rats display progressive cystine accumulation and crystal formation in multiple tissues including kidney, liver and thyroid. They show an early onset and progressive loss of urinary solutes, indicating generalized proximal tubule dysfunction, with development of typical swan-neck lesions, tubulointerstitial fibrosis and kidney failure, and decreased survival. The Ctns−/− rats also present crystals in the cornea, and bone and liver defects, as observed in patients. Mechanistically, the loss of cystinosin induces a phenotype switch associating abnormal proliferation and dedifferentiation, loss of apical receptors and transporters, and defective lysosomal activity and autophagy in the cells. Primary cultures of proximal tubule cells derived from the Ctns−/− rat kidneys confirmed the key changes caused by cystine overload, including reduced endocytic uptake, increased proliferation and defective lysosomal dynamics and autophagy. The novel Ctns−/− rat model and derived proximal tubule cell system provide invaluable tools to investigate the pathogenesis of cystinosis and to accelerate drug discovery.

Funder

Swiss National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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