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首页> 外文期刊>Microbiome >Compositional and functional characterisation of biomass-degrading microbial communities in guts of plant fibre- and soil-feeding higher termites
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Compositional and functional characterisation of biomass-degrading microbial communities in guts of plant fibre- and soil-feeding higher termites

机译:植物纤维和土壤饲养较高白蚁肠道生物质降解微生物群落的组成和功能性

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BACKGROUND:Termites are among the most successful insect lineages on the globe and are responsible for providing numerous ecosystem services. They mainly feed on wood and other plant material at different stages of humification. Lignocellulose is often a principal component of such plant diet, and termites largely rely on their symbiotic microbiota and associated enzymes to decompose their food efficiently. While lower termites and their gut flagellates were given larger scientific attention in the past, the gut lignocellulolytic bacteria of higher termites remain less explored. Therefore, in this study, we investigated the structure and function of gut prokaryotic microbiomes from 11 higher termite genera representative of Syntermitinae, Apicotermitinae, Termitidae and Nasutitermitinae subfamilies, broadly grouped into plant fibre- and soil-feeding termite categories.RESULTS:Despite the different compositional structures of the studied termite gut microbiomes, reflecting well the diet and host lineage, we observed a surprisingly high functional congruency between gut metatranscriptomes from both feeding groups. The abundance of transcripts encoding for carbohydrate active enzymes as well as expression and diversity profiles of assigned glycoside hydrolase families were also similar between plant fibre- and soil-feeding termites. Yet, dietary imprints highlighted subtle metabolic differences specific to each feeding category. Roughly, 0.18% of de novo re-constructed gene transcripts were shared between the different termite gut microbiomes, making each termite gut a unique reservoir of genes encoding for potentially industrially applicable enzymes, e.g. relevant to biomass degradation. Taken together, we demonstrated the functional equivalence in microbial populations across different termite hosts.CONCLUSIONS:Our results provide valuable insight into the bacterial component of the termite gut system and significantly expand the inventory of termite prokaryotic genes participating in the deconstruction of plant biomass. Video Abstract.
机译:背景:白蚁是全球最成功的昆虫谱系之一,负责提供众多生态系统服务。它们主要以不同阶段的湿化阶段喂木材和其他植物材料。木质纤维素通常是这种植物饮食的主要成分,并且白蚁主要依赖于其共生微生物群和相关酶以有效地分解它们的食物。虽然过去较大的白蚁和他们的肠道鞭毛在过去的科学关注中,肠道木质纤维素溶解细菌仍然不那么探索。因此,在这项研究中,我们研究了来自11种高级白蚁属,Apicotermitinae,Termitidae和Nasutiterinae Subfamilies的Gut原核微生物的结构和功能,大概被分组到植物纤维和土壤喂养的白蚁类别中。结果:尽管如此研究的白蚁肠道微生物体的组成结构,反映饮食和宿主谱系,我们观察到来自两种喂养组的肠道MetaTranscriptomes之间的令人惊讶的高功能一致性。在植物纤维和土壤喂养的白蚁之间也相似,对碳水化合物活性酶的表达和分化和分化谱不同的富含转录物以及分配的糖苷水解酶。然而,膳食印记突出显示每个饲料类别的细微代谢差异。大致的是,在不同的白蚁肠道微生物体之间共用0.18%的De Novo重建的基因转录物,使每个白蚁肠道是潜在的工业上适用的酶编码的独特储存器,例如,用于潜在的工业上适用的酶。与生物质降解相关。我们一起占据了不同白蚁主机的微生物群体中的功能等效。结论:我们的结果为白蚁肠系系统的细菌成分提供了有价值的洞察力,并显着扩展了参与植物生物质解构的白蚁原核基因的库存。视频摘要。

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