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Betaine Reduces Lipid Anabolism and Promotes Lipid Transport in Mice Fed a High-Fat Diet by Influencing Intestinal Protein Expression

Betaine is more efficient than choline and methionine methyl donors, as it can increase nitrogen storage, promote fat mobilisation and fatty acid oxidation and change body fat content and distribution. Lipid is absorbed primarily in the small intestine after consumption, which is also the basis of l...

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Autores principales: Hu, Haitao, Tan, Lun, Li, Xiaojiao, Li, Jingjing, Fan, Caiyun, Huang, Feng, Zhuo, Zhao, Hou, Kun, Xu, Yinying, Wang, Qingfeng, Yang, Yongxin, Cheng, Jianbo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9407371/
https://www.ncbi.nlm.nih.gov/pubmed/36010422
http://dx.doi.org/10.3390/foods11162421
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author Hu, Haitao
Tan, Lun
Li, Xiaojiao
Li, Jingjing
Fan, Caiyun
Huang, Feng
Zhuo, Zhao
Hou, Kun
Xu, Yinying
Wang, Qingfeng
Yang, Yongxin
Cheng, Jianbo
author_facet Hu, Haitao
Tan, Lun
Li, Xiaojiao
Li, Jingjing
Fan, Caiyun
Huang, Feng
Zhuo, Zhao
Hou, Kun
Xu, Yinying
Wang, Qingfeng
Yang, Yongxin
Cheng, Jianbo
author_sort Hu, Haitao
collection PubMed
description Betaine is more efficient than choline and methionine methyl donors, as it can increase nitrogen storage, promote fat mobilisation and fatty acid oxidation and change body fat content and distribution. Lipid is absorbed primarily in the small intestine after consumption, which is also the basis of lipid metabolism. This study was conducted to establish a mouse model of obesity in Kunming mice of the same age and similar body weight, and to assess the effect of betaine on the intestinal protein expression profile of mice using a proteomic approach. Analysis showed that betaine supplementation reversed the reduction in expression of proteins related to lipid metabolism and transport in the intestine of mice induced by a high-fat diet (HFD). For example, the addition of betaine resulted in a significant upregulation of microsomal triglyceride transfer protein (Mttp), apolipoprotein A-IV (Apoa4), fatty-acid-binding protein 1 (Fabp1) and fatty-acid-binding protein 2 (Fabp2) expression compared to the HFD group (p < 0.05), which exhibited accelerated lipid absorption and then translocation from the intestine into the body’s circulation, in addition to a significant increase in Acetyl-CoA acyltransferase (Acaa1a) protein expression, hastening lipid metabolism in the intestine (p < 0.05). Simultaneously, a significant reduction in protein expression of alpha-enolase 1 (Eno1) as the key enzyme for gluconeogenesis in mice in the betaine-supplemented group resulted in a reduction in lipid synthesis in the intestine (p < 0.05). These findings provide useful information for understanding the changes in the protein profile of the small intestine in response to betaine supplementation and the potential physiological regulation of diets’ nutrient absorption.
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spelling pubmed-94073712022-08-26 Betaine Reduces Lipid Anabolism and Promotes Lipid Transport in Mice Fed a High-Fat Diet by Influencing Intestinal Protein Expression Hu, Haitao Tan, Lun Li, Xiaojiao Li, Jingjing Fan, Caiyun Huang, Feng Zhuo, Zhao Hou, Kun Xu, Yinying Wang, Qingfeng Yang, Yongxin Cheng, Jianbo Foods Article Betaine is more efficient than choline and methionine methyl donors, as it can increase nitrogen storage, promote fat mobilisation and fatty acid oxidation and change body fat content and distribution. Lipid is absorbed primarily in the small intestine after consumption, which is also the basis of lipid metabolism. This study was conducted to establish a mouse model of obesity in Kunming mice of the same age and similar body weight, and to assess the effect of betaine on the intestinal protein expression profile of mice using a proteomic approach. Analysis showed that betaine supplementation reversed the reduction in expression of proteins related to lipid metabolism and transport in the intestine of mice induced by a high-fat diet (HFD). For example, the addition of betaine resulted in a significant upregulation of microsomal triglyceride transfer protein (Mttp), apolipoprotein A-IV (Apoa4), fatty-acid-binding protein 1 (Fabp1) and fatty-acid-binding protein 2 (Fabp2) expression compared to the HFD group (p < 0.05), which exhibited accelerated lipid absorption and then translocation from the intestine into the body’s circulation, in addition to a significant increase in Acetyl-CoA acyltransferase (Acaa1a) protein expression, hastening lipid metabolism in the intestine (p < 0.05). Simultaneously, a significant reduction in protein expression of alpha-enolase 1 (Eno1) as the key enzyme for gluconeogenesis in mice in the betaine-supplemented group resulted in a reduction in lipid synthesis in the intestine (p < 0.05). These findings provide useful information for understanding the changes in the protein profile of the small intestine in response to betaine supplementation and the potential physiological regulation of diets’ nutrient absorption. MDPI 2022-08-12 /pmc/articles/PMC9407371/ /pubmed/36010422 http://dx.doi.org/10.3390/foods11162421 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hu, Haitao
Tan, Lun
Li, Xiaojiao
Li, Jingjing
Fan, Caiyun
Huang, Feng
Zhuo, Zhao
Hou, Kun
Xu, Yinying
Wang, Qingfeng
Yang, Yongxin
Cheng, Jianbo
Betaine Reduces Lipid Anabolism and Promotes Lipid Transport in Mice Fed a High-Fat Diet by Influencing Intestinal Protein Expression
title Betaine Reduces Lipid Anabolism and Promotes Lipid Transport in Mice Fed a High-Fat Diet by Influencing Intestinal Protein Expression
title_full Betaine Reduces Lipid Anabolism and Promotes Lipid Transport in Mice Fed a High-Fat Diet by Influencing Intestinal Protein Expression
title_fullStr Betaine Reduces Lipid Anabolism and Promotes Lipid Transport in Mice Fed a High-Fat Diet by Influencing Intestinal Protein Expression
title_full_unstemmed Betaine Reduces Lipid Anabolism and Promotes Lipid Transport in Mice Fed a High-Fat Diet by Influencing Intestinal Protein Expression
title_short Betaine Reduces Lipid Anabolism and Promotes Lipid Transport in Mice Fed a High-Fat Diet by Influencing Intestinal Protein Expression
title_sort betaine reduces lipid anabolism and promotes lipid transport in mice fed a high-fat diet by influencing intestinal protein expression
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9407371/
https://www.ncbi.nlm.nih.gov/pubmed/36010422
http://dx.doi.org/10.3390/foods11162421
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