Comparative analysis of Faecalibacterium prausnitzii genomes shows a high level of genome plasticity and warrants separation into new species-level taxa

Сравнительный анализ геномов Faecalibacterium prausnitzii выявляет высокий уровень пластичности генома и обосновывает выделение новых таксонов видового уровня
C. Brian Fitzgerald, Andrey N. Shkoporov, Thomas Sutton, Andrei V. Chaplin, Vimalkumar Velayudhan, R. Paul Ross, Colin Hill
2018-12-01

Faecalibacterium prausnitziiaverage nucleotide identitycomparative genomicsgenome plasticityhorizontal gene transfer
BACKGROUND: Faecalibacterium prausnitzii is a ubiquitous member of the human gut microbiome, constituting up to 15% of the total bacteria in the human gut. Substantial evidence connects decreased levels of F. prausnitzii with the onset and progression of certain forms of inflammatory bowel disease, which has been attributed to its anti-inflammatory potential. Two phylogroups of F. prausnitzii have been identified, with a decrease in phylogroup I being a more sensitive marker of intestinal inflammation. Much of the genomic and physiological data available to date was collected using phylogroup II strains. Little analysis of F. prausnitzii genomes has been performed so far and genetic differences between phylogroups I and II are poorly understood. RESULTS: In this study we sequenced 11 additional F. prausnitzii genomes and performed comparative genomics to investigate intraspecies diversity, functional gene complement and the mobilome of 31 high-quality draft and complete genomes. We reveal a very low level of average nucleotide identity among F. prausnitzii genomes and a high level of genome plasticity. Two genomogroups can be separated based on differences in functional gene complement, albeit that this division does not fully agree with separation based on conserved gene phylogeny, highlighting the importance of horizontal gene transfer in shaping F. prausnitzii genomes. The difference between the two genomogroups is mainly in the complement of genes associated with catabolism of carbohydrates (such as a predicted sialidase gene in genomogroup I) and amino acids, as well as defense mechanisms. CONCLUSIONS: ).
1
Comparative analysis of 31 Faecalibacterium prausnitzii genomes revealed very low average nucleotide identity and extensive genome plasticity.
2
Functional gene profiles separated the genomes into two genomogroups, although this classification did not fully match conserved-gene phylogeny.
3
The discordance between functional and phylogenetic groupings highlights horizontal gene transfer as an important force shaping F. prausnitzii genomes.
4
The genomogroups mainly differed in genes involved in carbohydrate and amino-acid catabolism and defense mechanisms, including a predicted sialidase gene in genomogroup I.
5
The observed genomic divergence supports separating F. prausnitzii into new species-level taxa.

Faecalibacterium prausnitzii genomes from human gut microbiome strains

Intraspecies genomic diversity, genome plasticity, functional gene complements, mobilome composition, and phylogenetic separation into genomogroups and species-level taxa

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2018-12-01
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C. Brian Fitzgerald
Andrey N. Shkoporov
Thomas Sutton
Andrei V. Chaplin
Vimalkumar Velayudhan
R. Paul Ross
Colin Hill
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