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July 8, 2022Diabetes Obesity and Metabolism52 citationsOpen Access

The sodium‐glucose co‐transporter‐2 inhibitor ertugliflozin modifies the signature of cardiac substrate metabolism and reduces cardiac mTOR signalling, endoplasmic reticulum stress and apoptosis

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JMJulia MoellmannPMPascal Alexander MannBKBen A. Kappel

Key Result

Ertugliflozin improved left ventricular function and reduced myocardial fibrosis in a murine pressure overload model of cardiac hypertrophy.

Structured PICO

Does ertugliflozin improve left ventricular remodeling and modulate cardiac signaling pathways in a murine pressure overload model?

P
Population
Murine pressure overload model of cardiac hypertrophy followed for 10 weeks.
I
Intervention
Ertugliflozin (SGLT2 inhibitor) added to chow diet for 10 weeks
C
Comparator
Chow diet alone (control)
O
Outcome
Left ventricular function, myocardial fibrosis, and cardiac signaling pathways (mTOR, AMPK, ER stress, apoptosis)surrogate

In a murine pressure overload model, ertugliflozin improved left ventricular function and reduced fibrosis by modulating metabolic and signaling pathways, including AMPK and mTOR.

Abstract

AIM: To investigate cardiac signalling pathways connecting substrate utilization with left ventricular remodelling in a murine pressure overload model. METHODS: chow diet) for 10 weeks. RESULTS: Ertugliflozin improved left ventricular function and reduced myocardial fibrosis. This occurred simultaneously with a fasting-like response characterized by improved glucose tolerance and increased ketone body concentrations. While cardiac insulin signalling was reduced in response to SGLT2 inhibition, AMP-activated protein kinase (AMPK) signalling was increased with induction of the fatty acid transporter cluster of differentiation 36 and phosphorylation of acetyl-CoA carboxylase (ACC). Further, enzymes responsible for ketone body catabolism (β-hydroxybutyrate dehydrogenase, succinyl-CoA:3-oxoacid-CoA transferase and acetyl-CoA acetyltransferase 1) were induced by SGLT2 inhibition. Ertugliflozin led to more cardiac abundance of fatty acids, tricarboxylic acid cycle metabolites and ATP. Downstream mechanistic target of rapamycin (mTOR) pathway, relevant for protein synthesis, cardiac hypertrophy and adverse cardiac remodelling, was reduced by SGLT2 inhibition, with alleviation of endoplasmic reticulum (ER) stress and unfolded protein response (UPR) providing a potential mechanism for abundant reduced left ventricular apoptosis and fibrosis. CONCLUSION: SGLT2 inhibition reduced left ventricular fibrosis in a murine model of cardiac hypertrophy. Mechanistically, this was associated with reduced cardiac insulin and increased AMPK signalling as a potential mechanism for less cardiac mTOR activation with alleviation of downstream ER stress, UPR and apoptosis.

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Cite This Study

Moellmann et al. (2022) studied Cardiac hypertrophy. Ertugliflozin was evaluated on Left ventricular function and myocardial fibrosis. Ertugliflozin improved left ventricular function and reduced myocardial fibrosis in a murine pressure overload model of cardiac hypertrophy.

synapsesocial.com/papers/6a4c431a028ea97264ab77a2https://doi.org/10.1111/dom.14814
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