Related Experiment Video
Updated: Jun 21, 2026

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Unlocking the power of empagliflozin: Rescuing inflammation in hyperglycaemia-exposed human cardiomyocytes through
Rosaria Benedetti1,2, Ugo Chianese1, Chiara Papulino1
1Department of Precision Medicine, University of Campania 'Luigi Vanvitelli', Naples, Italy.
Aims:
Hyperglycaemic conditions increase cardiac stress, a common phenomenon associated with inflammation, aging, and metabolic imbalance. Sodium-glucose cotransporter 2 inhibitors, a class of anti-diabetic drugs, showed to improve cardiovascular functions although their mechanism of action has not yet been fully established. This study investigated the effects of empagliflozin on cardiomyocytes following high glucose exposure, specifically focusing on inflammatory and metabolic responses.
Methods And Results:
A three-part strategy was formulated: (i) a meta-analysis of selected randomized clinical trials was carried out to assess the anti-inflammatory effects of empagliflozin in diabetic patients; (ii) the impact of empagliflozin on human cardiomyocyte AC16 cells exposed to normal (5 mM) and high (33 mM) glucose concentrations for 2 and 7 days was explored by evaluating gene expression and protein levels of pivotal markers associated with cardiac inflammation, stress, endoplasmic reticulum damage, and calcium modulation; (iii) in silico data from bioinformatic analyses were exploited to construct an interaction map delineating the potential mechanism of action of empagliflozin on cardiac tissue. Empagliflozin reversed high-glucose mediated alterations at the transcriptional level, decreasing inflammatory, metabolic, and aging signatures. Specifically, in vitro experiments on human cardiomyocytes, meta-analyses of clinical data on inflammatory biomarkers from diabetic peripheral blood samples, and sequencing of pathological human heart tissues, all support that empagliflozin exerts anti-inflammatory effects both systemically and directly in cardiac tissue, on cardiomyocytes.
Conclusion:
Our study provides insights based on robust mechanistic data for optimizing heart failure management and highlights the intricate interplay between diabetes, inflammation, aging, and cardiovascular health.
Insights
Empagliflozin, an anti-diabetic drug, reduces cardiac inflammation and metabolic dysfunction caused by high glucose. This study confirms its benefits for cardiomyocytes, improving cardiovascular health in diabetes.
Area of Science:
- Cardiovascular Science
- Metabolic Disease Research
- Pharmacology
Background:
- Hyperglycemia exacerbates cardiac stress, inflammation, and aging.
- Sodium-glucose cotransporter 2 inhibitors (SGLT2i) improve cardiovascular function, but mechanisms are unclear.
- Understanding SGLT2i effects on cardiomyocytes is crucial for managing diabetic heart complications.
Purpose of the Study:
- To investigate empagliflozin's effects on cardiomyocytes under high glucose conditions.
- To elucidate empagliflozin's impact on inflammatory and metabolic pathways in cardiac cells.
- To explore the anti-inflammatory mechanisms of empagliflozin in diabetic cardiovascular disease.
Main Methods:
- Meta-analysis of randomized clinical trials for empagliflozin's anti-inflammatory effects.
- In vitro study on human AC16 cardiomyocytes exposed to normal and high glucose.
- Bioinformatic analysis to construct an in silico interaction map of empagliflozin's mechanism.
Main Results:
- Empagliflozin reversed high-glucose-induced transcriptional alterations in cardiomyocytes.
- Reduced inflammatory, metabolic, and aging signatures were observed.
- Evidence supports empagliflozin's systemic and direct cardiac anti-inflammatory effects.
Conclusions:
- Empagliflozin demonstrates significant anti-inflammatory and metabolic benefits for cardiomyocytes.
- Mechanistic insights support empagliflozin's role in optimizing heart failure management.
- Highlights the link between diabetes, inflammation, aging, and cardiovascular health.
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