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PMID: 19860885 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Genomic taxonomy of Vibrios.

BMC evolutionary biology ·Vol. 9 ·2009-10-27 ·Pages 258

Thompson CC, Vicente AC, Souza RC, Vasconcelos AT, Vesth T, Alves N, Ussery DW, Iida T, Thompson FL

Abstract

Vibrio taxonomy has been based on a polyphasic approach. In this study, we retrieve useful taxonomic information (i.e. data that can be used to distinguish different taxonomic levels, such as species and genera) from 32 genome sequences of different vibrio species. We use a variety of tools to explore the taxonomic relationship between the sequenced genomes, including Multilocus Sequence Analysis (MLSA), supertrees, Average Amino Acid Identity (AAI), genomic signatures, and Genome BLAST atlases. Our aim is to analyse the usefulness of these tools for species identification in vibrios. We have generated four new genome sequences of three Vibrio species, i.e., V. alginolyticus 40B, V. harveyi-like 1DA3, and V. mimicus strains VM573 and VM603, and present a broad analyses of these genomes along with other sequenced Vibrio species. The genome atlas and pangenome plots provide a tantalizing image of the genomic differences that occur between closely related sister species, e.g. V. cholerae and V. mimicus. The vibrio pangenome contains around 26504 genes. The V. cholerae core genome and pangenome consist of 1520 and 6923 genes, respectively. Pangenomes might allow different strains of V. cholerae to occupy different niches. MLSA and supertree analyses resulted in a similar phylogenetic picture, with a clear distinction of four groups (Vibrio core group, V. cholerae-V. mimicus, Aliivibrio spp., and Photobacterium spp.). A Vibrio species is defined as a group of strains that share > 95% DNA identity in MLSA and supertree analysis, > 96% AAI, < or = 10 genome signature dissimilarity, and > 61% proteome identity. Strains of the same species and species of the same genus will form monophyletic groups on the basis of MLSA and supertree. The combination of different analytical and bioinformatics tools will enable the most accurate species identification through genomic computational analysis. This endeavour will culminate in the birth of the online genomic taxonomy whereby researchers and end-users of taxonomy will be able to identify their isolates through a web-based server. This novel approach to microbial systematics will result in a tremendous advance concerning biodiversity discovery, description, and understanding.

MeSH Terms
Base Sequence Evolution, Molecular Genome, Bacterial Phylogeny Vibrio/classification,genetics
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Thompson Cristiane C
Laboratory of Molecular Genetics of Microrganims, Oswaldo Cruz Institute, FIOCRUZ, Rio de Janeiro, Brazil. [email protected]
Vicente Ana Carolina P
Souza Rangel C
Vasconcelos Ana Tereza R
Vesth Tammi
Alves Nelson
Ussery David W
Iida Tetsuya
Thompson Fabiano L
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Article Info
Journal
BMC evolutionary biology
Abbr.
BMC Evol Biol
ISSN
1471-2148
Published
2009-10-27
Epub
2009-00-27
Pages
258
Language
English
Region
England
NLM ID
100966975
PMCID
PMC2777879
Subset
IM
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