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Dietary methionine restriction improves the impairment of cardiac function in middle-aged obese mice
Le Han1, Guoqin Wu1, Chuanxin Feng1
1State Key Laboratory of Food Science and Technology, Jiangnan University, Wuxi, Jiangsu 214122, China. lgw@jiangnan.edu.cn and Center for Food Nutrition and Functional Food Engineering, School of Food Science and Technology, Jiangnan University, Wuxi, Jiangsu 214122, China.
Abstract:
Dietary methionine restriction (MR) has been reported to extend lifespan, reduce obesity and decrease oxidative damage to mtDNA in the heart of rats, and increase endogenous hydrogen sulfide (H2S) production in the liver and blood. H2S has many potential benefits in the pathophysiology of the cardiovascular system. MR also increases the level of homocysteine (Hcy) in the liver and plasma, but elevated plasma Hcy is a risk factor for cardiovascular disease. Therefore, this study aimed to determine the effect of MR on cardiac function and metabolic status in obese middle-aged mice and its possible mechanisms. C57BL/6J mice (aged approximately 28 weeks) were divided into six dietary groups: CON (0.86% methionine + 4% fat), CMR40 (0.52% methionine + 4% fat), CMR80 (0.17% methionine + 4% fat), HFD (0.86% methionine + 24% fat), HMR40 (0.52% methionine + 24% fat) and HMR80 (0.17% methionine + 24% fat) for 15 consecutive weeks. Our results showed that 80% MR improves systolic dysfunction in middle-aged obese mice and enhances myocardial energy metabolism. 80% MR also reduces myocardial oxidative stress and improves inflammatory response. In addition, 80% MR increased mice Hcy levels and activated remethylation and transsulfur pathways of Hcy and promoted endogenous H2S production in the heart. 40% MR has the same trend, but is not significant. Moreover 40% MR at variance with 80% MR, did not decrease the body weight in both control and high-fat diet mice. These findings suggest that MR can improve myocardial energy metabolism, reduce heart inflammation and oxidative stress by increasing cardiac H2S production, and improve cardiac dysfunction in middle-aged obese mice.
Insights
Methionine restriction (MR) improves heart function in obese mice by boosting energy metabolism and reducing inflammation. This is linked to increased hydrogen sulfide (H2S) production, offering cardiovascular benefits.
Area of Science:
- Cardiovascular Physiology
- Metabolic Disease Research
- Nutritional Science
Background:
- Dietary methionine restriction (MR) is linked to lifespan extension and reduced obesity.
- Hydrogen sulfide (H2S) shows cardiovascular benefits, while elevated homocysteine (Hcy) is a risk factor.
- The impact of MR on cardiac function in obese, middle-aged individuals requires further investigation.
Purpose of the Study:
- To investigate the effects of MR on cardiac function and metabolism in obese, middle-aged mice.
- To elucidate the underlying mechanisms, including H2S production and Hcy metabolism.
- To compare the effects of different levels of MR (40% and 80%) under normal and high-fat diets.
Main Methods:
- C57BL/6J mice (28 weeks old) were assigned to six dietary groups for 15 weeks.
- Groups included control, varying levels of MR (40%, 80%), and high-fat diets with or without MR.
- Cardiac function, energy metabolism, oxidative stress, inflammation, Hcy levels, and H2S production were assessed.
Main Results:
- 80% MR significantly improved systolic dysfunction and enhanced myocardial energy metabolism in obese mice.
- 80% MR reduced myocardial oxidative stress and inflammation.
- 80% MR increased cardiac Hcy levels, activating related pathways and promoting endogenous H2S production.
Conclusions:
- Methionine restriction (80%) improves cardiac function in middle-aged obese mice.
- MR enhances myocardial energy metabolism and reduces inflammation and oxidative stress.
- Increased cardiac H2S production is a key mechanism by which MR confers cardioprotection.

