探索人类肠道微生物群中三甲胺降解基因。

IF 3.7 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Yi-Ran Chen, Li-Dan Chen, Lin-Jie Zheng
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引用次数: 0

摘要

三甲胺(TMA)由肠道微生物产生,是心血管疾病的一个危险因素的前兆。目前,对人体肠道中tma降解菌的研究很少。本研究将富含TMA的培养物(来自104个年轻男性粪便样本)与宏基因组分析相结合,以确定TMA降解的关键微生物。结果表明,在富含tma的培养样品中,肠球菌对甲烷代谢的贡献显著增加。TMA富集组dmd-tmd(二甲胺/三甲胺脱氢酶)表达上调68.58%,表明厌氧脱氢酶途径参与了TMA代谢。值得注意的是,我们首先鉴定出含有dmd-tmd的分类群属于克里斯滕森菌(Christensenella timonensis)。产甲烷相关基因(M00563)的上调和M00563的显著富集(Reporter Score = 2.223)表明,产甲烷途径可能发挥了作用。基于IMG (Integrated Microbial Genome)数据库,我们构建了厌氧脱氢酶途径(dmd-tmd 1526个序列,mauA 1319个序列,mauB 326个序列)和有氧氧化途径(tmm 2146个序列,tdm 1445个序列,dmm 1519个序列)相关基因数据库,其中大部分属于假单胞菌。使用这些数据库筛选肠道宏基因组发现序列一致性较低(
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the trimethylamine-degrading genes in the human gut microbiome.

Trimethylamine (TMA), produced by gut microbes, is a precursor to a risk factor for cardiovascular diseases. Currently, TMA-degrading bacteria in the human gut have rarely been studied. This study combined TMA-enriched cultures (from 104 young male stool samples) with metagenomic profiling to identify key microbial players of TMA degradation. The results showed that the contribution of Enterococcus to methane metabolism was significantly higher in TMA-enriched culture samples. The 68.58% up-regulation of dmd-tmd (dimethylamine/trimethylamine dehydrogenase) in the TMA-enriched group indicated that the anaerobic dehydrogenase pathway participated in TMA metabolism. Notably, we first identified that taxa containing dmd-tmd belonged to Christensenella timonensis. The up-regulation of genes involved in methanogenesis (M00563) as well as the significant enrichment of M00563 (Reporter Score = 2.223) indicated that the methanogenesis pathway may play a role. We constructed gene databases for genes involved in the anaerobic dehydrogenase pathway (1526 sequences for dmd-tmd, 1319 sequences for mauA, and 326 sequences for mauB, respectively) and the aerobic oxidation pathway (2146 sequences for tmm, 1445 sequences for tdm, and 1519 sequences for dmm, respectively) based on genomes from the Integrated Microbial Genome (IMG) database, most of which belong to Pseudomonadota. Screening gut metagenomes with these databases revealed low sequence identity (< 70%), possibly because of the underrepresentation of gut-specific genomes from IMG. This study links Christensenella timonensis to TMA degradation, providing potential targets for microbiota modulation and a gene-centric framework to advance the characterization of gut microbial TMA metabolism.

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来源期刊
AMB Express
AMB Express BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
7.20
自引率
2.70%
发文量
141
审稿时长
13 weeks
期刊介绍: AMB Express is a high quality journal that brings together research in the area of Applied and Industrial Microbiology with a particular interest in ''White Biotechnology'' and ''Red Biotechnology''. The emphasis is on processes employing microorganisms, eukaryotic cell cultures or enzymes for the biosynthesis, transformation and degradation of compounds. This includes fine and bulk chemicals, polymeric compounds and enzymes or other proteins. Downstream processes are also considered. Integrated processes combining biochemical and chemical processes are also published.
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