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Published on: February 25, 2016
Impact of Obesity Caused by a High-Fat Diet on the Heart's Redox Balance
Yildy Utreras-Mendoza1, Isidora Mujica Valenzuela2, Luis Montecinos1
1Programa de Fisiología y Biofísica, Instituto de Ciencias Biomédicas, Facultad de Medicina, Universidad de Chile, Avda. Independencia 1027, Santiago 8380172, Chile.
Insights
High-fat diets induce obesity and cardiac changes in mice. Despite increased oxidative stress markers, the heart experiences reductive stress, not oxidative stress, during early cardiac hypertrophy.
Area of Science:
- Cardiovascular Biology
- Metabolic Disease Research
- Redox Biology
Background:
- Obesity is linked to oxidative stress and cardiovascular diseases like cardiac hypertrophy.
- The precise redox state during early cardiac hypertrophy is not well understood.
Purpose of the Study:
- To characterize the cardiac redox status in early-stage hypertrophy induced by a high-fat diet (HFD).
- To investigate oxidative stress and hypertrophy biomarkers in HFD-fed mice.
Main Methods:
- Mice were fed an HFD for 12 weeks.
- Assessed cardiac hypertrophy markers (heart weight/tibia length, gene expression).
- Measured oxidative stress markers (lipid peroxidation, protein carbonylation), redox couples (NADH/NAD+, NADPH/NADP+, GSH/GSSG), and antioxidant enzyme activity.
Main Results:
- HFD induced obesity and cardiac hypertrophy.
- Increased NOX4, but decreased lipid peroxidation and no change in protein carbonylation.
- GSH/GSSG ratio doubled, while NADH/NAD+ and NADPH/NADP+ ratios were stable.
- Antioxidant enzyme gene expression increased, but only glutathione reductase activity was enhanced.
Conclusions:
- Early cardiac hypertrophy in HFD-fed mice is characterized by reductive, not oxidative, stress.
- The heart adapts to HFD challenges with altered redox balance and antioxidant responses.
Abstract:
Obesity has been implicated in the induction of oxidative stress, which is thought to contribute to the pathogenesis of various cardiovascular diseases, including cardiac hypertrophy. However, the redox status during the early stages of cardiac hypertrophy remains inadequately characterized. In this study, we administered a high-fat diet (HFD) to C57BL/6N mice for 12 weeks. We investigated the expression of biomarkers associated with hypertrophy and oxidative stress, including lipid peroxidation, protein carbonylation, and the redox couples NADH/NAD+, NADPH/NADP+, and GSH/GSSG. Additionally, we assessed the expression levels and enzymatic activities of catalase, glutathione peroxidase, glutathione reductase, and superoxide dismutase. Following 12 weeks on a HFD, mice exhibited obesity and a 10% increase in the heart weight/tibia length ratio, together with an upregulation in the mRNA levels of β-myosin heavy chain, brain natriuretic peptide, and regulator of calcineurin 1, isoform 4. There was also a significant increase in NOX4 content in the heart of these animals; however, we observed no rise in protein carbonylation and a decrease in lipid peroxidation products. As for the redox couples, the GSH/GSSG ratio nearly doubled, while the NADH/NAD+ and NADPH/NADP+ ratios remained stable. All antioxidant enzyme mRNAs examined showed increased expression; however, only glutathione reductase showed higher activity. Our findings suggest that reductive stress is predominant within the cardiac environment of these animals.
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