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Updated: May 15, 2026

Analyzing Oxygen Consumption Rate in Primary Cultured Mouse Neonatal Cardiomyocytes Using an Extracellular Flux Analyzer
Published on: February 13, 2019
FoxO1 is crucial for sustaining cardiomyocyte metabolism and cell survival
Prasanth Puthanveetil1, Andrea Wan, Brian Rodrigues
1Faculty of Pharmaceutical Sciences, The University of British Columbia, 2146 East Mall, Vancouver, BC, Canada V6T 1Z3.
Abstract:
Diabetic cardiomyopathy is a term used to describe cardiac muscle damage-induced heart failure. Multiple structural and biochemical reasons have been suggested to induce this disorder. The most prominent feature of the diabetic myocardium is attenuated insulin signalling that reduces survival kinases (Akt), potentially switching on protein targets like FoxOs, initiators of cell death. FoxO1, a prominent member of the forkhead box family and subfamily O of transcription factors and produced from the FKHR gene, is involved in regulating metabolism, cell proliferation, oxidative stress response, immune homeostasis, pluripotency in embryonic stem cells, and cell death. In this review we describe distinctive functions of FoxOs, specifically FoxO1 under conditions of nutrient excess, insulin resistance and diabetes, and its manipulation to restore metabolic equilibrium to limit cardiac damage due to cell death. Because FoxO1 helps cardiac tissue to combat a variety of stress stimuli, it could be a major determinant in regulating diabetic cardiomyopathy. In this regard, we highlight studies from our group and others who illustrate how cardiac tissue-specific FoxO1 deletion protects the heart against cardiomyopathy and how its down-regulation in endothelial tissue could prevent against atherosclerotic plaques. In addition, we also describe studies that show FoxO1's beneficial qualities by highlighting their role in inducing anti-oxidant, autophagic, and anti-apoptotic genes under stress conditions of ischaemia-reperfusion and myocardial infarction. Thus, the aforementioned FoxO1 traits could be useful in curbing cardiac tissue-specific impairment of function following diabetes.
Insights
Diabetic cardiomyopathy involves heart failure due to cardiac muscle damage. Targeting FoxO1, a key protein, may restore metabolic balance and limit cell death, protecting against diabetic heart disease.
Area of Science:
- Cardiovascular Biology
- Metabolic Disorders
- Molecular Biology
Background:
- Diabetic cardiomyopathy is a significant complication of diabetes mellitus, leading to heart failure.
- Impaired insulin signaling and activation of cell death pathways (FoxOs) are key features of diabetic myocardium.
- FoxO1, a transcription factor, plays a critical role in cellular metabolism, stress response, and cell death.
Purpose of the Study:
- To review the distinct functions of FoxO1 in the context of nutrient excess, insulin resistance, and diabetes.
- To explore the therapeutic potential of manipulating FoxO1 to mitigate cardiac damage in diabetic cardiomyopathy.
- To highlight the protective roles of FoxO1 in cardiac tissue under various stress conditions.
Main Methods:
- Literature review focusing on studies investigating FoxO1 in diabetes and cardiac function.
- Analysis of research demonstrating the effects of cardiac-specific FoxO1 deletion and endothelial FoxO1 down-regulation.
- Examination of studies on FoxO1's role in antioxidant, autophagic, and anti-apoptotic gene regulation.
Main Results:
- Cardiac-specific deletion of FoxO1 protects the heart against cardiomyopathy.
- Down-regulation of FoxO1 in endothelial tissue may prevent atherosclerotic plaques.
- FoxO1 activation induces protective genes against oxidative stress, promotes autophagy, and prevents apoptosis under ischemic conditions.
Conclusions:
- FoxO1 is a critical determinant in regulating diabetic cardiomyopathy.
- Targeting FoxO1 offers a promising therapeutic strategy for preventing and treating diabetic heart disease.
- Understanding FoxO1's multifaceted roles can guide interventions to curb cardiac dysfunction in diabetes.
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