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PMID: 22574681 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Unique core genomes of the bacterial family vibrionaceae: insights into niche adaptation and speciation.

BMC genomics ·Vol. 13 ·2012-05-10 ·Pages 179

Kahlke T, Goesmann A, Hjerde E, Willassen NP, Haugen P

Abstract

The criteria for defining bacterial species and even the concept of bacterial species itself are under debate, and the discussion is apparently intensifying as more genome sequence data is becoming available. However, it is still unclear how the new advances in genomics should be used most efficiently to address this question. In this study we identify genes that are common to any group of genomes in our dataset, to determine whether genes specific to a particular taxon exist and to investigate their potential role in adaptation of bacteria to their specific niche. These genes were named unique core genes. Additionally, we investigate the existence and importance of unique core genes that are found in isolates of phylogenetically non-coherent groups. These groups of isolates, that share a genetic feature without sharing a closest common ancestor, are termed genophyletic groups. The bacterial family Vibrionaceae was used as the model, and we compiled and compared genome sequences of 64 different isolates. Using the software orthoMCL we determined clusters of homologous genes among the investigated genome sequences. We used multilocus sequence analysis to build a host phylogeny and mapped the numbers of unique core genes of all distinct groups of isolates onto the tree. The results show that unique core genes are more likely to be found in monophyletic groups of isolates. Genophyletic groups of isolates, in contrast, are less common especially for large groups of isolate. The subsequent annotation of unique core genes that are present in genophyletic groups indicate a high degree of horizontally transferred genes. Finally, the annotation of the unique core genes of Vibrio cholerae revealed genes involved in aerotaxis and biosynthesis of the iron-chelator vibriobactin. The presented work indicates that genes specific for any taxon inside the bacterial family Vibrionaceae exist. These unique core genes encode conserved metabolic functions that can shed light on the adaptation of a species to its ecological niche. Additionally, our study suggests that unique core genes can be used to aid classification of bacteria and contribute to a bacterial species definition on a genomic level. Furthermore, these genes may be of importance in clinical diagnostics and drug development.

MeSH Terms
Adaptation, Biological/genetics Cluster Analysis Databases, Genetic Gene Transfer, Horizontal Genome, Bacterial Multigene Family Phylogeny Software Species Specificity Vibrionaceae/classification,genetics
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Kahlke Tim
Department of Chemistry, Faculty of Science and Technology, The Norwegian Structural Biology Centre, University of Tromsø, Tromsø, Norway. [email protected]
Goesmann Alexander
Hjerde Erik
Willassen Nils Peder
Haugen Peik
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Article Info
Journal
BMC genomics
Abbr.
BMC Genomics
ISSN
1471-2164
Published
2012-05-10
Epub
2012-00-10
Pages
179
Language
English
Region
England
NLM ID
100965258
PMCID
PMC3464603
Subset
IM
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