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bioRxiv · 10.1101/2022.11.15.516570

Multiomics characterization of the zoo-housed gorilla gut microbiome reveals loss of bacterial diversity besides abundant fungal cellulose-degrading and archaeal methanogenic activity

Abstract

We carried out a comparative analysis between the bacterial microbiota composition of zoo-housed western lowland gorillas and their wild counterparts through 16S rRNA gene amplicon sequencing. In addition, we characterized the carbohydrate-active and methanogenic potential of the zoo-housed gorilla microbiome through shotgun metagenomics and RNA sequencing. The zoo-housed gorilla microbiota showed increased alpha diversity in terms of bacterial species richness and a distinct composition from that of the wild gorilla microbiota, including a loss of abundant fiber-degrading and hydrogenic Chloroflexi. Metagenomic analysis of the CAZyome indicated predominant oligosaccharide-degrading activity, while RNA sequencing revealed diverse cellulase and hemi-cellulase activities in the zoo-housed gorilla gut, contributing to a total of 268 identified carbohydrate-active enzymes. Metatranscriptome analysis revealed a substantial contribution of 38% of the transcripts from anaerobic fungi and archaea to the gorilla microbiome. This activity originates from cellulose-degrading and hydrogenic fungal species belonging to the class Neocallimastigomycetes, as well as from methylotrophic and hydrogenotrophic methanogenic archaea belonging to the classes Thermoplasmata and Methanobacteria, respectively. Our study shows the added value of RNA sequencing in a multiomics approach and highlights the contribution of eukaryotic and archaeal activities to the gut microbiome of gorillas.

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BibTeXRIS

Houtkamp, I., van Zijll Langhout, M., Bessem, M., Pirovano, W., Kort, R.. 2022-11-15. Multiomics characterization of the zoo-housed gorilla gut microbiome reveals loss of bacterial diversity besides abundant fungal cellulose-degrading and archaeal methanogenic activity. https://doi.org/10.1101/2022.11.15.516570

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