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The SGLT2 Inhibitor Canagliflozin Promotes β-Cell Regeneration and Restores and Stabilises β-Cell Identity in a Polygenic Model of Severe Early-Onset Type 2 Diabetes

Producción científica: Articlerevisión exhaustiva

Resumen

Childhood obesity has led to an increase in type 2 diabetes (T2D) among youth, with adolescent-onset T2D showing a rapid decline in β-cell function compared to adult-onset cases. While the disease progression is more aggressive in early life, treatment can lead to recovery or remission more often at younger ages. SGLT2i have proven multiple health benefits when prescribed to adults with T2D but may have a greater potential in improving insulin production and β-cell mass in youth. In our study, TallyHO mice, which develop severe early-onset T2D, were treated with canagliflozin (cana) while on a 10-week diet. Results showed a significant reduction in blood glucose levels and improved β-cell function, indicated by higher C-peptide, islet insulin content, and HOMA-B index compared to untreated mice. Cana treatment restored the islet area and β to α-cell ratio, while also decreasing apoptosis. Notably, cana promoted the transient appearance of endocrine bihormonal cells and small clusters of insulin-positive cells, suggesting a possible transdifferentiation process and β-cell neogenesis. Furthermore, cana stabilised β-cell phenotype, restoring the expression of key identity markers while reducing abnormal cell types and the dedifferentiation to precursors and mesenchymal cells. These findings suggest that canagliflozin can promote the regeneration of pancreatic islets and mitigate β-cell dedifferentiation in the early onset of β-cell deficiency.

Idioma originalEnglish
Número de artículoe71041
PublicaciónJournal of Cellular and Molecular Medicine
Volumen30
N.º5
DOI
EstadoPublished - mar 2026

Nota bibliográfica

Publisher Copyright:
© 2026 The Author(s). Journal of Cellular and Molecular Medicine published by Foundation for Cellular and Molecular Medicine and John Wiley & Sons Ltd.

Financiación

This work was supported by the National Institutes of Health NIH grants [1R21AR070620-01] to K.M.T. and [7R01DK084045-04] to J.L.F. Additional funding was provided by the University of Kentucky Barnstable Brown Diabetes Center Paediatric Laboratory Endowment. We thank Dr. Thomas Wilkop for the imaging services and valuable advice regarding the SIM experiment. We also thank Matt Mussman and Corey Hughes (Bio395 students under the mentorship of IP) for their valuable technical help. This research was supported by the Biospecimen Procurement & Translational Pathology Shared Resource Facility of the University of Kentucky Markey Cancer Center [P30CA177558]. This work was supported by the National Institutes of Health NIH grants [1R21AR070620‐01] to K.M.T. and [7R01DK084045‐04] to J.L.F. Additional funding was provided by the University of Kentucky Barnstable Brown Diabetes Center Paediatric Laboratory Endowment. We thank Dr. Thomas Wilkop for the imaging services and valuable advice regarding the SIM experiment. We also thank Matt Mussman and Corey Hughes (Bio395 students under the mentorship of IP) for their valuable technical help. This research was supported by the Biospecimen Procurement & Translational Pathology Shared Resource Facility of the University of Kentucky Markey Cancer Center [P30CA177558].

FinanciadoresNúmero del financiador
University of Kentucky
Matt Mussman and Corey Hughes
University of Kentucky Barnstable Brown Diabetes Center Paediatric Laboratory Endowment
National Institutes of Health (NIH)1R21AR070620-01, 7R01DK084045-04, 7R01DK084045‐04, 1R21AR070620‐01
University of Kentucky Markey Comprehensive Cancer CenterP30CA177558

    ODS de las Naciones Unidas

    Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible

    1. Good health and well being
      Good health and well being

    ASJC Scopus subject areas

    • Molecular Medicine
    • Cell Biology

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