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小鼠模型中微生物群与哺乳动物代谢相互作用的自上而下的系统生物学观点。

A top-down systems biology view of microbiome-mammalian metabolic interactions in a mouse model.

作者信息

Martin François-Pierre J, Dumas Marc-Emmanuel, Wang Yulan, Legido-Quigley Cristina, Yap Ivan K S, Tang Huiru, Zirah Séverine, Murphy Gerard M, Cloarec Olivier, Lindon John C, Sprenger Norbert, Fay Laurent B, Kochhar Sunil, van Bladeren Peter, Holmes Elaine, Nicholson Jeremy K

机构信息

Department of Biomolecular Medicine, Division of Surgery, Oncology, Reproductive Biology and Anaesthetics, Faculty of Medicine, Imperial College London, South Kensington, London, UK.

出版信息

Mol Syst Biol. 2007;3:112. doi: 10.1038/msb4100153. Epub 2007 May 22.

Abstract

Symbiotic gut microorganisms (microbiome) interact closely with the mammalian host's metabolism and are important determinants of human health. Here, we decipher the complex metabolic effects of microbial manipulation, by comparing germfree mice colonized by a human baby flora (HBF) or a normal flora to conventional mice. We perform parallel microbiological profiling, metabolic profiling by (1)H nuclear magnetic resonance of liver, plasma, urine and ileal flushes, and targeted profiling of bile acids by ultra performance liquid chromatography-mass spectrometry and short-chain fatty acids in cecum by GC-FID. Top-down multivariate analysis of metabolic profiles reveals a significant association of specific metabotypes with the resident microbiome. We derive a transgenomic graph model showing that HBF flora has a remarkably simple microbiome/metabolome correlation network, impacting directly on the host's ability to metabolize lipids: HBF mice present higher ileal concentrations of tauro-conjugated bile acids, reduced plasma levels of lipoproteins but higher hepatic triglyceride content associated with depletion of glutathione. These data indicate that the microbiome modulates absorption, storage and the energy harvest from the diet at the systems level.

摘要

共生肠道微生物(微生物组)与哺乳动物宿主的新陈代谢密切相互作用,是人类健康的重要决定因素。在此,我们通过比较由人类婴儿菌群(HBF)或正常菌群定殖的无菌小鼠与常规小鼠,来解读微生物操控的复杂代谢效应。我们进行了平行的微生物学分析、通过对肝脏、血浆、尿液和回肠冲洗液进行¹H核磁共振的代谢组分析,以及通过超高效液相色谱 - 质谱联用对胆汁酸进行靶向分析,并通过气相色谱 - 火焰离子化检测对盲肠中的短链脂肪酸进行分析。对代谢谱的自上而下多变量分析揭示了特定代谢型与常驻微生物组之间的显著关联。我们推导了一个跨基因组图模型,表明HBF菌群具有一个非常简单的微生物组/代谢组相关网络,直接影响宿主代谢脂质的能力:HBF小鼠回肠中牛磺结合胆汁酸浓度较高,血浆脂蛋白水平降低,但肝脏甘油三酯含量较高,且伴有谷胱甘肽耗竭。这些数据表明,微生物组在系统水平上调节饮食中营养物质的吸收、储存和能量获取。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9e4/2673711/fae0a060597b/msb4100153-f1.jpg

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