Non-targeted Metabolomics Analysis of the Effects of Arabinogalactan on the Metabolites of Akkermansia muciniphila

被引:0
|
作者
Feng X. [1 ]
Ma Y. [1 ]
Wu X. [1 ]
Kong X. [1 ]
Zhang T. [1 ]
Lokhov D. [2 ]
Serkova O. [3 ]
Xu X. [1 ]
机构
[1] College of Food Science Key Laboratory of Dairy Science and Education, North East Agricultural University, Harbin
[2] Ametis of Russia
[3] Mendeleev Chemical Society of Russia, Moscow
关键词
Akkermansia muciniphila (Akk); arabinogalactan; hypoxanthine; metabolic pathways; mohanone phenol; propionic acid;
D O I
10.13386/j.issn1002-0306.2021100007
中图分类号
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摘要
Among many plant polysaccharides, arabinogalactan had the best growth-promoting effect on Akkermansia muciniphila (Akk) model strain (DSM 22959). In order to further explore the influence of arabinogalactan on Akk metabolites, arabinogalactan was used as part of the carbon source to ferment Akk in vitro for the first time, and determined the supplementary amount of arabinogalactan to facilitate the Akk fermentation broth. In the subsequent analysis of the samples, high-resolution non-targeted metabolomics technology was used to detect and analyze the differential metabolites in the Akk fermentation broth samples. The results showed that there were 85 different metabolites (VIP>1, P<0.05) and 32 different metabolic pathways. This study confirmed that the arabinogalactan could affect metabolic pathways, biosynthesis of amino acids, 2-oxocarboxylic acid metabolism, ABC transporters and other metabolic pathways, promoting Akk to produce more metabolites with special effects, such as hypoxanthine, mohanone phenol, propionic acid, etc., which had potential of weight loss, anti-cancer and blood pressure lowering, respectively. The results of this study will provide a theoretical basis for the use of arabinogalactan as a prebiotics of Akk or its biogenesis in the future. © 2022, Editorial Department of Science and Technology of Food Science. All rights reserved.
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页码:21 / 34
页数:13
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共 41 条
  • [1] LI B B, HONG Y, GU Y, Et al., Functional metabolomics re-veals that astragalus polysaccharides improve lipids metabolism through microbial metabolite 2-hydroxybutyric acid in obese mice[J], Engineering, (2020)
  • [2] GUO C, GUO D, FANG L, Et al., Ganoderma lucidum polysaccharide modulates gut microbiota and immune cell function to in-hibit inflammation and tumorigenesis in colon[J], Carbohydrate Polymers, 267, 2, (2021)
  • [3] LIN T L, LU C C, LAI W F, Et al., Role of gut microbiota in identification of novel TCM-derived active metabolites[J], Protein & Cell, 12, 5, pp. 394-410, (2020)
  • [4] WANG Y, LAPOINTE G., Arabinogalactan utilization by Bi-fidobacterium longum subsp. longum NCC 2705 and Bacteroides caccae ATCC 43185 in monoculture and coculture[J], Microorgan-isms, 8, 11, (2020)
  • [5] HAUER J, ANDERER F A., Mechanism of stimulation of human natural killer cytotoxicity by arabinogalactan from Larix occi-dentalis[J], Cancer Immunology Immunotherapy, 36, 4, pp. 237-244, (1993)
  • [6] Nana SUN, Wengming CUI, Xin ZHANG, Et al., Study on toxicological safety evaluation of arabinogalactan[J], Journal of Toxicology, 31, 4, (2017)
  • [7] CROCIANI F, ALESSANDRINI A, MUCCI M M, Et al., De-gradation of complex carbohydrates by Bifidobacterium spp.[J], Int J Fd Microbiol, 24, 1−2, (1994)
  • [8] KELLY G S., Larch arabinogalactan: Clinical relevance of a novel immune-enhancing polysaccharide[J], Alternative Medicine Review A Journal of Clinical Therapeutic, 4, 2, (1999)
  • [9] BAHRAMZADEH S, TABARSA M, YOU S G, Et al., An ara-binogalactan isolated from Boswellia carterii: Purification, structural elucidation and macrophage stimulation via NF-κB and MAPK pathways[J], Journal of Functional Foods, 52, pp. 450-458, (2018)
  • [10] LI H, XIE W B, QIAO X A, Et al., Structural characterization of arabinogalactan extracted from Ixeris chinensis (Thunb.) Nakai and its immunomodulatory effect on RAW264.7 macrophages[J], International Journal of Biological Macromolecules, 143, pp. 977-983, (2020)