ArticleChinese medical journal2026
Sodium-glucose cotransporter 2 inhibitors facilitate cell phenotype conversion of alpha cells through progenitors to beta cells by activating Ppargc1α in diabetic mice.
Article in Chinese medical journal, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
backgroundSodium-glucose cotransporter 2 inhibitor (SGLT2i) improves beta-cell function in animals and humans with diabetes. Herein, we aimed to investigate the effects of SGLT2i on beta-cell regeneration, trace the origin of regenerated beta cells, and reveal the potential mechanism.
methodsType 2 and type 1 diabetic mice were treated with canagliflozin (10 mg/kg), dapagliflozin (1 mg/kg), or vehicle. Islet morphology was evaluated to investigate beta-cell regeneration. Inducible pancreatic neurogenin 3 (Ngn3) + progenitor lineage-tracing mice and alpha-cell lineage-tracing mice were used to trace the origin of regenerated cells. Mouse and human islets, alpha cells, and beta cells were incubated with dapagliflozin (12.5 μmol/L) or vehicle. Insulin and glucagon-like peptide-1 (GLP-1) release, gene expression, and RNA sequencing analysis were performed to clarify the direct actions of SGLT2i and to screen potential targets. Alpha cells were transfected with peroxisome proliferator-activated receptor-γ coactivator 1α ( Ppargc1α ) plasmid or with Ppargc1α siRNA, followed by incubation with or without dapagliflozin to confirm the effects of Ppargc1α in alpha-cell phenotype conversion.
resultsSGLT2i increased islet and beta-cell areas in type 2 diabetic mice and showed a similar trend in type 1 diabetic mice. SGLT2i induced alpha-cell dedifferentiation into Ngn3 + progenitors and promoted progenitor differentiation toward beta cells. In cultured diabetic mouse and human islets and in stressed alpha cells, SGLT2i increased supernatant insulin and active GLP-1 levels, downregulated alpha-cell-specific marker expression, and upregulated the expression of endocrine progenitor- and beta-cell-specific markers, including prohormone convertase 1/3. Although dapagliflozin did not affect beta cells directly, it affected alpha cells (457 upregulated and 235 downregulated genes). Ppargc1α, a coactivator participating in oxidative phosphorylation, was identified as a potential target. By using overexpression and knockdown, we confirmed that Ppargc1α participated in SGLT2i-induced regulation of alpha-cell phenotype conversion.
conclusionAlpha-cell regression to progenitors and progenitor differentiation toward beta cells represent a novel pathway for beta-cell neogenesis induced by SGLT2i in diabetes, with Ppargc1α playing a role in this process.
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