Specific substrate-driven changes in human faecal microbiota composition contrast with functional redundancy in short-chain fatty acid production

丁酸盐 生物 丙酸盐 发酵 生物化学 短链脂肪酸 真细菌 细菌 广域古菌界 食品科学 肠道菌群 微生物种群生物学 微生物代谢 丁酸 微生物学 16S核糖体RNA 遗传学 基因
作者
Nicole Reichardt,Maren Vollmer,Grietje Holtrop,Freda Farquharson,Daniel Wefers,Mirko Bunzel,Sylvia H. Duncan,Janice E. Drew,Lynda M. Williams,Graeme Milligan,Thomas C. Preston,Douglas J. Morrison,Harry J. Flint,Petra Louis
出处
期刊:The ISME Journal [Springer Nature]
卷期号:12 (2): 610-622 被引量:164
标识
DOI:10.1038/ismej.2017.196
摘要

The diet provides carbohydrates that are non-digestible in the upper gut and are major carbon and energy sources for the microbial community in the lower intestine, supporting a complex metabolic network. Fermentation produces the short-chain fatty acids (SCFAs) acetate, propionate and butyrate, which have health-promoting effects for the human host. Here we investigated microbial community changes and SCFA production during in vitro batch incubations of 15 different non-digestible carbohydrates, at two initial pH values with faecal microbiota from three different human donors. To investigate temporal stability and reproducibility, a further experiment was performed 1 year later with four of the carbohydrates. The lower pH (5.5) led to higher butyrate and the higher pH (6.5) to more propionate production. The strongest propionigenic effect was found with rhamnose, followed by galactomannans, whereas fructans and several α- and β-glucans led to higher butyrate production. 16S ribosomal RNA gene-based quantitative PCR analysis of 22 different microbial groups together with 454 sequencing revealed significant stimulation of specific bacteria in response to particular carbohydrates. Some changes were ascribed to metabolite cross-feeding, for example, utilisation by Eubacterium hallii of 1,2-propanediol produced from fermentation of rhamnose by Blautia spp. Despite marked inter-individual differences in microbiota composition, SCFA production was surprisingly reproducible for different carbohydrates, indicating a level of functional redundancy. Interestingly, butyrate formation was influenced not only by the overall % butyrate-producing bacteria in the community but also by the initial pH, consistent with a pH-dependent shift in the stoichiometry of butyrate production.

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