Literature DB >> 31830598

An Akkermansia muciniphila subtype alleviates high-fat diet-induced metabolic disorders and inhibits the neurodegenerative process in mice.

Feifan Wu1, Xianfeng Guo1, Min Zhang1, Zihao Ou1, Dan Wu1, Lulu Deng1, Zhi Lu1, Jiachun Zhang1, Guihua Deng1, Shengqiang Chen2, Shenghui Li3, Jiangfeng Yi4, Yongzheng Peng5.   

Abstract

The prevalence of obesity and diabetes, and their complicating mental disorders, severely affect public health. This study aimed to investigate the long-term effects of an Akkermansia muciniphila subtype (A. muciniphilasub) on high-fat diet-induced obesity and diabetes, and to evaluate whether this subtype can alleviate their complicated mental disorders. Whole genome sequencing and short chain fatty acid production analysis in supernatant of pure culture were performed. Female adult C57BL/6 mice were fed a high-fat diet or a normal chow diet and were gavaged with A. muciniphilasub or phosphate-buffered saline daily for 10 months. Body weight, food consumption and blood glucose were measured. At the end of the treatment period, all mice were subjected to the Y-maze test, sucrose preference test, analyses of serum, fecal microbiota analysis and histological examination. This A. muciniphilasub had 278 unique genes compared to the type strain (A. muciniphila ATCC BAA-835) and produced short chain fatty acids both. A. muciniphilasub administration significantly reduced body weight gain and improved the spatial memory of high-fat diet-fed mice. A. muciniphilasub increased Nissl bodies in neurons of the hippocampus, and restored the high-fat diet-inhibited tryptophan metabolism. The high-fat diet led to decreased serum 5-hydroxytryptamine and induced depression, which were not alleviated by A. muciniphilasub. A. muciniphilasub increased the relative fecal abundance of Bifidobacterium, and was negatively correlated with the fecal abundance of Bacteroides. The present study demonstrated the beneficial effects of this A. muciniphilasub on body weight, blood glucose control and the alleviation of the memory decay caused by a high-fat diet in mice.
Copyright © 2019 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  16S metagenomic sequencing; Akkermansia muciniphila subtype; Bifidobacterium; Short chain fatty acid; Spatial memory

Year:  2019        PMID: 31830598     DOI: 10.1016/j.anaerobe.2019.102138

Source DB:  PubMed          Journal:  Anaerobe        ISSN: 1075-9964            Impact factor:   3.331


  18 in total

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Review 2.  The role of the gut microbiota and nutrition on spatial learning and spatial memory: a mini review based on animal studies.

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Review 5.  Gut microbiota-derived metabolites as central regulators in metabolic disorders.

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6.  Targeting the Intestinal Microbiota to Prevent Type 2 Diabetes and Enhance the Effect of Metformin on Glycaemia: A Randomised Controlled Pilot Study.

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7.  Akkermansia muciniphila promotes type H vessel formation and bone fracture healing by reducing gut permeability and inflammation.

Authors:  Jiang-Hua Liu; Tao Yue; Zhong-Wei Luo; Jia Cao; Zi-Qi Yan; Ling Jin; Teng-Fei Wan; Ci-Jun Shuai; Zheng-Guang Wang; Yong Zhou; Ran Xu; Hui Xie
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Review 8.  Akkermansia muciniphila, a New Generation of Beneficial Microbiota in Modulating Obesity: A Systematic Review.

Authors:  Jumana Nabil Abuqwider; Gianluigi Mauriello; Mohammad Altamimi
Journal:  Microorganisms       Date:  2021-05-20

9.  Beneficial Effects of Newly Isolated Akkermansia muciniphila Strains from the Human Gut on Obesity and Metabolic Dysregulation.

Authors:  Meng Yang; Shambhunath Bose; Sookyoung Lim; JaeGu Seo; JooHyun Shin; Dokyung Lee; Won-Hyong Chung; Eun-Ji Song; Young-Do Nam; Hojun Kim
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10.  Nrf2/ARE Activators Improve Memory in Aged Mice via Maintaining of Mitochondrial Quality Control of Brain and the Modulation of Gut Microbiome.

Authors:  Irina S Sadovnikova; Artem P Gureev; Daria A Ignatyeva; Maria V Gryaznova; Ekaterina V Chernyshova; Ekaterina P Krutskikh; Anastasia G Novikova; Vasily N Popov
Journal:  Pharmaceuticals (Basel)       Date:  2021-06-23
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