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Updated: Oct 20, 2025

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Empagliflozin maintains capillarization and improves cardiac function in a murine model of left ventricular pressure
Masaaki Nakao1, Ippei Shimizu2, Goro Katsuumi3
1Department of Cardiovascular Biology and Medicine, Niigata University Graduate School of Medical and Dental Sciences, Niigata, 951-8510, Japan.
Abstract:
Patients with type 2 diabetes treated with Sodium glucose transporter 2 (SGLT2) inhibitors show reduced mortality and hospitalization for heart failure (HF). SGLT2 inhibitors are considered to activate multiple cardioprotective pathways; however, underlying mechanisms are not fully described. This study aimed to elucidate the underlying mechanisms of the beneficial effects of SGLT2 inhibitors on the failing heart. We generated a left ventricular (LV) pressure overload model in C57BL/6NCrSlc mice by transverse aortic constriction (TAC) and examined the effects of empagliflozin (EMPA) in this model. We conducted metabolome and transcriptome analyses and histological and physiological examinations. EMPA administration ameliorated pressure overload-induced systolic dysfunction. Metabolomic studies showed that EMPA increased citrulline levels in cardiac tissue and reduced levels of arginine, indicating enhanced metabolism from arginine to citrulline and nitric oxide (NO). Transcriptome suggested possible involvement of the insulin/AKT pathway that could activate NO production through phosphorylation of endothelial NO synthase (eNOS). Histological examination of the mice showed capillary rarefaction and endothelial apoptosis after TAC, both of which were significantly improved by EMPA treatment. This improvement was associated with enhanced expression phospho-eNOS and NO production in cardiac endothelial cells. NOS inhibition attenuated these cardioprotective effects of EMPA. The in vitro studies showed that catecholamine-induced endothelial apoptosis was inhibited by NO, arginine, or AKT activator. EMPA activates the AKT/eNOS/NO pathway, which helps to suppress endothelial apoptosis, maintain capillarization and improve systolic dysfunction during LV pressure overload.
Insights
Sodium glucose transporter 2 (SGLT2) inhibitors like empagliflozin improve heart function by activating the AKT/eNOS/NO pathway. This mechanism reduces heart failure and preserves cardiac function during pressure overload.
Area of Science:
- Cardiology
- Pharmacology
- Molecular Biology
Background:
- Sodium glucose transporter 2 (SGLT2) inhibitors reduce mortality and heart failure hospitalizations in type 2 diabetes patients.
- The precise cardioprotective mechanisms of SGLT2 inhibitors remain incompletely understood.
Purpose of the Study:
- To elucidate the molecular mechanisms behind the beneficial effects of SGLT2 inhibitors on the failing heart.
- To investigate the impact of empagliflozin on cardiac function and pathways in a pressure overload model.
Main Methods:
- Utilized a mouse model of left ventricular pressure overload induced by transverse aortic constriction (TAC).
- Administered empagliflozin (EMPA) and performed metabolomic, transcriptomic, histological, and physiological analyses.
- Conducted in vitro studies to assess endothelial apoptosis and nitric oxide (NO) production.
Main Results:
- Empagliflozin ameliorated pressure overload-induced systolic dysfunction.
- EMPA increased cardiac citrulline and decreased arginine, suggesting enhanced arginine to citrulline and nitric oxide (NO) metabolism.
- EMPA treatment improved capillary rarefaction and endothelial apoptosis, associated with increased phospho-eNOS and NO production.
- Inhibition of nitric oxide synthase (NOS) attenuated EMPA's cardioprotective effects.
Conclusions:
- Empagliflozin activates the AKT/eNOS/NO pathway in the heart.
- This activation suppresses endothelial apoptosis, maintains capillarization, and improves systolic function during left ventricular pressure overload.
- SGLT2 inhibitors offer cardioprotection through enhanced NO bioavailability and endothelial cell survival.

