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Quantification of Atherosclerosis in Mice
Published on: June 12, 2019
Dietary methionine restriction ameliorates atherosclerosis by remodeling the gut microbiota in apolipoprotein
Hao Yang1, Yuhui Yang1,2, Guifang Cui1
1Henan Key Laboratory of Cereal and Oil Food Safety and Nutrition, College of Food Science and Engineering, Henan University of Technology, Zhengzhou 450001, Henan, China. yangyuhui1992@126.com.
Abstract:
Dietary methionine restriction (MR) has been shown to reduce the risk of atherosclerosis, but the specific regulatory effects and mechanisms remain unclear. This research intends to investigate the effects of MR on atherosclerosis in apolipoprotein E-knockout (ApoE-/-) mice fed a high-fat, high-cholesterol, high-choline diet and their mechanisms. ApoE-/- mice were fed a normal diet (0.86% methionine + 4.5% fat + 0% cholesterol + 0.2% choline), a high-fat, high-cholesterol, high-choline diet (0.86% methionine + 20% fat + 1% cholesterol + 1% choline), or a high-fat, high-cholesterol, high-choline + MR diet (0.17% methionine + 20% fat + 1% cholesterol + 1% choline) for 8 consecutive weeks. The results show that MR reduced body weight, fat mass, fat deposition in the liver and adipocytes, and plasma lipid levels; improved the morphological structure of the aorta; and reduced the aortic lesion area and lipid levels. In addition, MR downregulated aortic pro-inflammatory cytokine levels, upregulated aortic anti-inflammatory cytokine levels, and improved aortic oxidative stress. Moreover, metagenomic sequencing results suggested that MR improved the gut microbiota composition, particularly through increased relative abundance of short-chain fatty acid (SCFA)-producing bacteria, and changed the relative abundance of inflammation-, lipid metabolism-, and bile acid metabolism-related bacteria at the species level. Furthermore, MR promoted SCFA production and bile acid metabolism, and reduced cell adhesion molecules and foam cell formation in the aorta. Thus, our findings indicated that MR improved the gut microbiota composition, especially increased SCFA production, and ameliorated oxidative stress and inflammation in the aorta, thereby preventing atherosclerosis.
Insights
Dietary methionine restriction (MR) significantly reduces atherosclerosis risk by improving gut microbiota, increasing beneficial short-chain fatty acids (SCFAs), and reducing inflammation and oxidative stress in the aorta.
Area of Science:
- Cardiovascular Science
- Nutritional Science
- Microbiome Research
Background:
- Dietary methionine restriction (MR) is linked to reduced atherosclerosis risk, but its precise mechanisms are not fully understood.
- Atherosclerosis involves complex processes including lipid metabolism, inflammation, and oxidative stress, influenced by diet and gut microbiota.
Purpose of the Study:
- To investigate the effects of MR on atherosclerosis in apolipoprotein E-knockout (ApoE-/-) mice.
- To elucidate the underlying mechanisms, including gut microbiota alterations, SCFA production, and aortic tissue changes.
Main Methods:
- ApoE-/- mice were fed standard, high-fat/high-cholesterol/high-choline, or high-fat/high-cholesterol/high-choline + MR diets for 8 weeks.
- Evaluated body weight, fat mass, plasma lipids, aortic morphology, lesion area, inflammatory markers, oxidative stress, and gut microbiota composition via metagenomic sequencing.
Main Results:
- MR reduced body weight, fat mass, liver/adipocyte fat deposition, and plasma lipids.
- MR improved aortic structure, decreased lesion area, reduced pro-inflammatory cytokines, and enhanced anti-inflammatory cytokines.
- MR positively modulated gut microbiota, increasing SCFA-producing bacteria, promoting SCFA and bile acid metabolism, and reducing aortic oxidative stress, inflammation, cell adhesion molecules, and foam cell formation.
Conclusions:
- Dietary methionine restriction ameliorates atherosclerosis in ApoE-/- mice.
- MR exerts protective effects by enhancing gut microbiota, increasing SCFA production, and reducing aortic inflammation and oxidative stress.

