The SGLT2 inhibitor dapagliflozin improves kidney function in glycogen storage disease XI

Author:

Trepiccione Francesco12ORCID,Iervolino Anna12ORCID,D’Acierno Mariavittoria2ORCID,Siccardi Sabrina2,Costanzo Vincenzo2ORCID,Sardella Donato2ORCID,De La Motte Luigi R.2ORCID,D’Apolito Luciano2ORCID,Miele Antonio2ORCID,Perna Alessandra F.1ORCID,Capolongo Giovanna1ORCID,Zacchia Miriam1,Frische Sebastian3ORCID,Nielsen Rikke3,Staiano Leopoldo45ORCID,Sambri Irene46ORCID,De Cegli Rossella4ORCID,Unwin Robert7,Eladari Dominique8910,Capasso Giovambattista12ORCID

Affiliation:

1. Department of Medical Translational Sciences, University of Campania “Luigi Vanvitelli,” 80131 Naples, Italy.

2. Biogem, Institute of Molecular Biology and Genetics, 83031 Ariano Irpino, Italy.

3. Department of Biomedicine, Aarhus University, 8000 Aarhus, Denmark.

4. Telethon Institute of Genetics and Medicine (TIGEM), 80078 Pozzuoli, Italy.

5. Institute for Genetic and Biomedical Research, National Research Council (CNR), 20089 Milan, Italy.

6. Department of Medical and Translational Science, Federico II University, 80131 Naples, Italy.

7. UCL Department of Renal Medicine, Royal Free Hospital, London NW3 2PF, UK.

8. Service de Médecine de Précision des maladies Métaboliques et Rénales, CHU Amiens-Picardie, Université de Picardie Jules Verne, 80054 Amiens, France.

9. FCRIN-INI-CRCT, 54500 Vandœuvre-lès-Nancy, France.

10. Paris Cardiovascular Research Center (PARCC), INSERM U970, F-75015, Paris, France.

Abstract

Glycogen storage disease XI, also known as Fanconi-Bickel syndrome (FBS), is a rare autosomal recessive disorder caused by mutations in the SLC2A2 gene that encodes the glucose-facilitated transporter type 2 (GLUT2). Patients develop a life-threatening renal proximal tubule dysfunction for which no treatment is available apart from electrolyte replacement. To investigate the renal pathogenesis of FBS, SLC2A2 expression was ablated in mouse kidney and HK-2 proximal tubule cells. GLUT2 Pax8Cre+ mice developed time-dependent glycogen accumulation in proximal tubule cells and recapitulated the renal Fanconi phenotype seen in patients. In vitro suppression of GLUT2 impaired lysosomal autophagy as shown by transcriptomic and biochemical analysis. However, this effect was reversed by exposure to a low glucose concentration, suggesting that GLUT2 facilitates the homeostasis of key cellular pathways in proximal tubule cells by preventing glucose toxicity. To investigate whether targeting proximal tubule glucose influx can limit glycogen accumulation and correct symptoms in vivo, we treated mice with the selective SGLT2 inhibitor dapagliflozin. Dapagliflozin reduced glycogen accumulation and improved metabolic acidosis and phosphaturia in the animals by normalizing the expression of Napi2a and NHE3 transporters. In addition, in a patient with FBS, dapagliflozin was safe, improved serum potassium and phosphate concentrations, and reduced glycogen content in urinary shed cells. Overall, this study provides proof of concept for dapagliflozin as a potentially suitable therapy for FBS.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

General Medicine

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