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Canagliflozin Prevents Diabetes-Induced Vascular Dysfunction in ApoE-Deficient Mice
Arief Rahadian1, Daiju Fukuda2, Hotimah Masdan Salim1
1Department of Cardiovascular Medicine, Tokushima University Graduate School of Biomedical Sciences.
Aim:
Recent studies have demonstrated that selective sodium-glucose cotransporter 2 inhibitors (SGLT2is) reduce cardiovascular events, although their mechanism remains obscure. We examined the effect of canagliflozin, an SGLT2i, on atherogenesis and investigated its underlying mechanism.
Method:
Canagliflozin (30 mg/kg/day) was administered by gavage to streptozotocin-induced diabetic apolipoprotein E-deficient (ApoE-/-) mice. Sudan IV staining was performed at the aortic arch. Immunostaining, quantitative RT-PCR, and vascular reactivity assay were performed using the aorta. In vitro experiments using human umbilical vein endothelial cells (HUVECs) were also performed.
Result:
Canagliflozin decreased blood glucose (P<0.001) and total cholesterol (P<0.05) levels. Sudan IV staining showed that 12-week canagliflozin treatment decreased atherosclerotic lesions (P<0.05). Further, 8-week canagliflozin treatment ameliorated endothelial dysfunction, as determined by acetylcholine-induced vasodilation (P<0.05), and significantly reduced the expressions of inflammatory molecules such as ICAM-1 and VCAM-1 in the aorta at the RNA and protein levels. Canagliflozin also reduced the expressions of NADPH oxidase subunits such as NOX2 and p22phox in the aorta and reduced urinary excretion of 8-OHdG, suggesting a reduction in oxidative stress. Methylglyoxal, a precursor of advanced glycation end products, increased the expressions of ICAM-1 and p22phox in HUVECs (P<0.05, both). Methylglyoxal also decreased the phosphorylation of eNOSSer1177 and Akt but increased the phosphorylation of eNOSThr495 and p38 MAPK in HUVECs.
Conclusion:
Canagliflozin prevents endothelial dysfunction and atherogenesis in diabetic ApoE-/- mice. Anti-inflammatory and antioxidative potential due to reduced glucose toxicity to endothelial cells might be its underlying mechanisms.
Insights
Canagliflozin, a sodium-glucose cotransporter 2 inhibitor (SGLT2i), prevents atherosclerosis and endothelial dysfunction in diabetic mice. Its benefits stem from anti-inflammatory and antioxidative effects, reducing glucose toxicity to cells.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Metabolic Diseases
Background:
- Sodium-glucose cotransporter 2 inhibitors (SGLT2is) show cardiovascular benefits, but mechanisms are unclear.
- Atherogenesis in diabetes is complex, involving inflammation and oxidative stress.
Purpose of the Study:
- To investigate the anti-atherogenic effects of canagliflozin, an SGLT2i.
- To elucidate the underlying mechanisms of canagliflozin's action on atherogenesis.
Main Methods:
- Canagliflozin was administered to diabetic apolipoprotein E-deficient (ApoE-/-) mice.
- Atherosclerotic lesions, endothelial function, and inflammatory/oxidative stress markers were assessed.
- In vitro studies used human umbilical vein endothelial cells (HUVECs).
Main Results:
- Canagliflozin reduced blood glucose, total cholesterol, and atherosclerotic lesions.
- It ameliorated endothelial dysfunction and decreased inflammatory markers (ICAM-1, VCAM-1).
- Canagliflozin reduced oxidative stress markers (NADPH oxidase subunits, 8-OHdG) and improved endothelial cell signaling.
Conclusions:
- Canagliflozin effectively prevents endothelial dysfunction and atherogenesis in a mouse model of diabetes.
- Anti-inflammatory and antioxidative properties, mediated by reduced endothelial glucose toxicity, are key mechanisms.
- Canagliflozin holds promise for managing cardiovascular complications in diabetes.
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