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Published on: March 7, 2022
Effects of canagliflozin on human myocardial redox signalling: clinical implications
Hidekazu Kondo1,2, Ioannis Akoumianakis1, Ileana Badi1
1Division of Cardiovascular Medicine, Radcliffe Department of Medicine, University of Oxford, L6 West Wing, John Radcliffe Hospital, Headley Way, Oxford OX3 9DU, UK.
Aims:
Recent clinical trials indicate that sodium-glucose cotransporter 2 (SGLT2) inhibitors improve cardiovascular outcomes in heart failure patients, but the underlying mechanisms remain unknown. We explored the direct effects of canagliflozin, an SGLT2 inhibitor with mild SGLT1 inhibitory effects, on myocardial redox signalling in humans.
Methods And Results:
Study 1 included 364 patients undergoing cardiac surgery. Right atrial appendage biopsies were harvested to quantify superoxide (O2.-) sources and the expression of inflammation, fibrosis, and myocardial stretch genes. In Study 2, atrial tissue from 51 patients was used ex vivo to study the direct effects of canagliflozin on NADPH oxidase activity and nitric oxide synthase (NOS) uncoupling. Differentiated H9C2 and primary human cardiomyocytes (hCM) were used to further characterize the underlying mechanisms (Study 3). SGLT1 was abundantly expressed in human atrial tissue and hCM, contrary to SGLT2. Myocardial SGLT1 expression was positively associated with O2.- production and pro-fibrotic, pro-inflammatory, and wall stretch gene expression. Canagliflozin reduced NADPH oxidase activity via AMP kinase (AMPK)/Rac1signalling and improved NOS coupling via increased tetrahydrobiopterin bioavailability ex vivo and in vitro. These were attenuated by knocking down SGLT1 in hCM. Canagliflozin had striking ex vivo transcriptomic effects on myocardial redox signalling, suppressing apoptotic and inflammatory pathways in hCM.
Conclusions:
We demonstrate for the first time that canagliflozin suppresses myocardial NADPH oxidase activity and improves NOS coupling via SGLT1/AMPK/Rac1 signalling, leading to global anti-inflammatory and anti-apoptotic effects in the human myocardium. These findings reveal a novel mechanism contributing to the beneficial cardiac effects of canagliflozin.
Insights
Sodium-glucose cotransporter 2 (SGLT2) inhibitors like canagliflozin reduce heart failure risk. This study reveals canagliflozin directly suppresses myocardial NADPH oxidase activity and improves nitric oxide synthase (NOS) coupling via SGLT1 signaling, offering new insights into its cardiac benefits.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- Sodium-glucose cotransporter 2 (SGLT2) inhibitors improve cardiovascular outcomes in heart failure.
- The precise mechanisms behind these benefits, particularly concerning myocardial redox signaling, are not fully understood.
Purpose of the Study:
- To investigate the direct effects of canagliflozin, an SGLT2 inhibitor with mild SGLT1 inhibitory properties, on myocardial redox signaling in humans.
- To elucidate the molecular pathways involved in canagliflozin's cardiac effects.
Main Methods:
- Analysis of atrial tissue biopsies from cardiac surgery patients to assess superoxide production and gene expression.
- Ex vivo and in vitro studies using human atrial tissue and cardiomyocytes to evaluate canagliflozin's impact on NADPH oxidase activity and nitric oxide synthase (NOS) coupling.
- Investigated the role of SGLT1 expression and its signaling pathways (AMPK/Rac1).
Main Results:
- SGLT1 was highly expressed in human atrial tissue and cardiomyocytes, unlike SGLT2.
- Myocardial SGLT1 expression correlated positively with superoxide production and pro-fibrotic, pro-inflammatory, and wall stretch gene expression.
- Canagliflozin reduced NADPH oxidase activity and improved NOS coupling via SGLT1/AMPK/Rac1 signaling, with anti-inflammatory and anti-apoptotic effects observed in cardiomyocytes.
Conclusions:
- Canagliflozin directly suppresses myocardial NADPH oxidase activity and improves NOS coupling through SGLT1/AMPK/Rac1 signaling.
- These actions result in global anti-inflammatory and anti-apoptotic effects in the human myocardium.
- This study reveals a novel mechanism contributing to the beneficial cardiac effects of canagliflozin in heart failure.
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