Sodium-glucose cotransporter 2 (SGLT2) inhibitors have beneficial outcomes on the renal and cardiovascular system in diabetes mellitus (DM) patients. As most clinical trials were performed in Type 2 DM, the effects of SGLT2 inhibition in Type 1 DM are not completely clarified. To evaluate the effects of long-standing SGLT2 inhibitor dapagliflozin on the protein profile in rats with a Type 1 DM model. Male Wistar rats were divided into Control (C), DM, and DM treated with dapagliflozin (DM+DAPA) for 30 weeks. DM was induced by a single injection of streptozotocin (40 mg/kg); dapagliflozin was added to chow (5 mg/kg/day). Label-free mass spectrometry was used to assess left ventricular proteome. The bioinformatic tools used were STRING, Cytoscape, Cluster Marker, and ClueGO. ANOVA and Tukey or Kruskal-Wallis and Dunn. Dapagliflozin attenuated body weight loss (C 574 ± 43; DM 339 ± 31*; DM+DAPA 413 ± 30*# g; p < 0.05 * vs C; # vs DM) and reduced glycemia [C 108 (101-111); DM 554 (529-562)*; DM + DAPA 343 (237-416)*# mg/dL; p < 0.05 * vs C; # vs DM]. Most proteins identified in the networks downregulated in DM vs C were upregulated in DM + DAPA vs DM. Proteins related to energy metabolism (CKm, Ak1, Atp5pf, Mdh1, Idh2), excitation-contraction coupling (Actc1, Casq2, Serca1, Serca2a), and oxidative stress (Sod1, Sod2) were upregulated in DM + DAPA. KEGG pathways enriched in DM vs Control included gap junction, necroptosis, and fatty acid degradation (upregulated), and Alzheimer's disease, cardiac contraction, and glycolysis/gluconeogenesis (downregulated). In DM + DAPA vs DM, upregulated pathways included Parkinson's disease, cardiac contraction, citrate cycle, necroptosis, and cyclic guanosine monophosphate-dependent protein kinase (PKG) signaling pathway; downregulated proteins were linked to ketone body metabolism. Dapagliflozin modulates cardiac protein abundance by attenuating DM-induced changes in Type 1 DM rats.
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