LC-HRMS-based metabolomics and lipidomics analyses of a novel probiotic Akkermansia Muciniphila in response to different nutritional stimulations

IF 1.7 4区 生物学 Q4 BIOCHEMICAL RESEARCH METHODS
Huan Zhang, Shiqi Zhang, Li Chen, Rui Xu, Jiangjiang Zhu
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Abstract

The mucin-degrading gut commensal Akkermansia muciniphila (A. muciniphila) negatively correlates with various diseases, including metabolic disorders, neurodegenerative disorders, and cancers, through interacting with host receptors by diverse molecules. Still, their exact metabolic capability within the nutrient-rich environment (such as in the human gut) is not fully characterized. Therefore, in the present study, we investigated the comprehensive metabolome and lipidome of A. muciniphila after supplementation of four major gut microbial nutrients: mucin, inorganic salts, bile salts, and short-chain fatty acids (SCFAs). Our results showed that mucin is the predominant driver of the different lipidomic and metabolomic profiles of A. muciniphila, and it promotes the overall growth of this bacteria. While the addition of inorganic salts, bile salts, and SCFAs was found to inhibit the growth of A. muciniphila. Interestingly, inorganic salts affected the purine metabolism in A. muciniphila cultures, while adding bile salts significantly increased the production of other bile acids and N-acyl amides. Lastly, SCFAs were identified to alter the A. muciniphila energy utilization of triglycerides, fatty acyls, and phosphatidylethanolamines. To our knowledge, this is the first study to examine the comprehensive lipidome and metabolome of A. muciniphila, which highlights the importance of nutritional impacts on the lipidome and metabolome of A. muciniphila and hence providing foundational knowledge to unveil the potential effects of A. muciniphila on host health.

Abstract Image

基于 LC-HRMS 的新型益生菌 Akkermansia Muciniphila 在不同营养刺激下的代谢组学和脂质组学分析。
可降解粘蛋白的肠道共生菌 Akkermansia muciniphila(A. muciniphila)通过多功能分子与宿主受体相互作用,与各种疾病(包括代谢紊乱、神经退行性疾病和癌症)呈负相关。然而,它们在营养丰富的环境(如人类肠道)中的确切代谢能力还没有完全定性。因此,在本研究中,我们研究了在补充已知存在于肠道环境中的四种主要肠道微生物营养物质:粘蛋白、无机盐、胆汁盐和短链脂肪酸(SCFAs)后,粘蛋白噬菌体的综合代谢组和脂质组。我们的研究结果表明,粘蛋白是造成粘脂蝇不同脂质组和代谢组特征的主要驱动因素,它能促进这种细菌的整体生长。而添加无机盐、胆汁盐和 SCFAs 则会抑制粘液虹鳟鱼的生长。有趣的是,无机盐会影响粘膜虹彩菌的嘌呤代谢,而添加胆汁盐则会显著增加其他胆汁酸和 N-酰基酰胺的产生。最后,研究还发现 SCFAs 可改变粘液虹吸虫对甘油三酯、脂肪酰基和磷脂酰乙醇胺的能量利用。据我们所知,这是第一项全面研究粘毛蝇脂质体和代谢组的研究,突出了营养对粘毛蝇脂质体和代谢组影响的重要性,从而为揭示粘毛蝇对宿主健康的潜在影响提供了基础知识。
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来源期刊
Journal of microbiological methods
Journal of microbiological methods 生物-生化研究方法
CiteScore
4.30
自引率
4.50%
发文量
151
审稿时长
29 days
期刊介绍: The Journal of Microbiological Methods publishes scholarly and original articles, notes and review articles. These articles must include novel and/or state-of-the-art methods, or significant improvements to existing methods. Novel and innovative applications of current methods that are validated and useful will also be published. JMM strives for scholarship, innovation and excellence. This demands scientific rigour, the best available methods and technologies, correctly replicated experiments/tests, the inclusion of proper controls, calibrations, and the correct statistical analysis. The presentation of the data must support the interpretation of the method/approach. All aspects of microbiology are covered, except virology. These include agricultural microbiology, applied and environmental microbiology, bioassays, bioinformatics, biotechnology, biochemical microbiology, clinical microbiology, diagnostics, food monitoring and quality control microbiology, microbial genetics and genomics, geomicrobiology, microbiome methods regardless of habitat, high through-put sequencing methods and analysis, microbial pathogenesis and host responses, metabolomics, metagenomics, metaproteomics, microbial ecology and diversity, microbial physiology, microbial ultra-structure, microscopic and imaging methods, molecular microbiology, mycology, novel mathematical microbiology and modelling, parasitology, plant-microbe interactions, protein markers/profiles, proteomics, pyrosequencing, public health microbiology, radioisotopes applied to microbiology, robotics applied to microbiological methods,rumen microbiology, microbiological methods for space missions and extreme environments, sampling methods and samplers, soil and sediment microbiology, transcriptomics, veterinary microbiology, sero-diagnostics and typing/identification.
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