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Deciphering the trophic interaction between Akkermansia muciniphila and the butyrogenic gut commensal Anaerostipes caccae using a metatranscriptomic approach

机译:使用亚转录组学方法破译黏液阿克克氏菌与产肠肠道共产厌食菌之间的营养相互作用

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摘要

Host glycans are paramount in regulating the symbiotic relationship between humans and their gut bacteria. The constant flux of host-secreted mucin at the mucosal layer creates a steady niche for bacterial colonization. Mucin degradation by keystone species subsequently shapes the microbial community. This study investigated the transcriptional response during mucin-driven trophic interaction between the specialised mucin-degrader Akkermansia muciniphila and a butyrogenic gut commensal Anaerostipes caccae. A. muciniphila monocultures and co-cultures with non-mucolytic A. caccae from the Lachnospiraceae family were grown anaerobically in minimal media supplemented with mucin. We analysed for growth, metabolites (HPLC analysis), microbial composition (quantitative reverse transcription PCR), and transcriptional response (RNA-seq). Mucin degradation by A. muciniphila supported the growth of A. caccae and concomitant butyrate production predominantly via the acetyl-CoA pathway. Differential expression analysis (DESeq 2) showed the presence of A. caccae induced changes in the A. muciniphila transcriptional response with increased expression of mucin degradation genes and reduced expression of ribosomal genes. Two putative operons that encode for uncharacterised proteins and an efflux system, and several two-component systems were also differentially regulated. This indicated A. muciniphila changed its transcriptional regulation in response to A. caccae. This study provides insight to understand the mucin-driven microbial ecology using metatranscriptomics. Our findings show that the expression of mucolytic enzymes by A. muciniphila increases upon the presence of a community member. This could indicate its role as a keystone species that supports the microbial community in the mucosal environment by increasing the availability of mucin sugars.Electronic supplementary materialThe online version of this article (10.1007/s10482-018-1040-x) contains supplementary material, which is available to authorized users.
机译:宿主聚糖对于调节人与肠道细菌之间的共生关系至关重要。宿主分泌的粘蛋白在粘膜层的恒定流量为细菌定殖创造了稳定的生态位。关键族物种对粘蛋白的降解随后塑造了微生物群落。这项研究调查了专门的粘蛋白降解剂Akkermansia muciniphila和产肠肠道共产厌氧杆菌之间的粘蛋白驱动的营养相互作用期间的转录反应。黏液曲霉的单培养和与Lachnospiraceae家族的非黏液曲霉的共培养在添加黏蛋白的基本培养基中厌氧生长。我们分析了生长,代谢物(HPLC分析),微生物组成(定量逆转录PCR)和转录反应(RNA-seq)。粘液曲霉对粘蛋白的降解主要通过乙酰辅酶A途径支持了A. caccae的生长和伴随丁酸的产生。差异表达分析(DESeq 2)表明,卡卡氏菌诱导了粘液曲霉转录反应中的变化,其中粘蛋白降解基因的表达增加,核糖体基因的表达减少。两个推定的操纵子,编码未表征的蛋白质和一个外排系统,以及几个两组分系统也受到不同的调控。这表明粘液曲霉改变了其转录调控,以响应卡卡曲霉。这项研究提供了见解,以了解使用超转录组学的粘蛋白驱动微生物生态学。我们的发现表明,社区成员的存在会增加粘液曲霉黏液分解酶的表达。这可能表明它是通过增加粘蛋白糖的可用性而在黏膜环境中支持微生物群落的关键物种。电子补充材料本文的在线版本(10.1007 / s10482-018-1040-x)包含补充材料,其中适用于授权用户。

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