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PMID: 15892870 Published · ppublish English Journal Article

Nanoarchaea: representatives of a novel archaeal phylum or a fast-evolving euryarchaeal lineage related to Thermococcales?

Genome biology ·Vol. 6 ·No. 5 ·2005-00-00 ·Pages R42

Brochier C, Gribaldo S, Zivanovic Y, Confalonieri F, Forterre P

Abstract

Cultivable archaeal species are assigned to two phyla -- the Crenarchaeota and the Euryarchaeota -- by a number of important genetic differences, and this ancient split is strongly supported by phylogenetic analysis. The recently described hyperthermophile Nanoarchaeum equitans, harboring the smallest cellular genome ever sequenced (480 kb), has been suggested as the representative of a new phylum -- the Nanoarchaeota -- that would have diverged before the Crenarchaeota/Euryarchaeota split. Confirming the phylogenetic position of N. equitans is thus crucial for deciphering the history of the archaeal domain. We tested the placement of N. equitans in the archaeal phylogeny using a large dataset of concatenated ribosomal proteins from 25 archaeal genomes. We indicate that the placement of N. equitans in archaeal phylogenies on the basis of ribosomal protein concatenation may be strongly biased by the coupled effect of its above-average evolutionary rate and lateral gene transfers. Indeed, we show that different subsets of ribosomal proteins harbor a conflicting phylogenetic signal for the placement of N. equitans. A BLASTP-based survey of the phylogenetic pattern of all open reading frames (ORFs) in the genome of N. equitans revealed a surprisingly high fraction of close hits with Euryarchaeota, notably Thermococcales. Strikingly, a specific affinity of N. equitans and Thermococcales was strongly supported by phylogenies based on a subset of ribosomal proteins, and on a number of unrelated molecular markers. We suggest that N. equitans may more probably be the representative of a fast-evolving euryarchaeal lineage (possibly related to Thermococcales) than the representative of a novel and early diverging archaeal phylum.

MeSH Terms
Crenarchaeota/classification,genetics Euryarchaeota/classification,genetics Evolution, Molecular Genes, Archaeal Genome, Archaeal Nanoarchaeota/classification,genetics Phylogeny Proteomics Ribosomal Proteins/classification,genetics Thermococcales/classification,genetics
Chemicals
Ribosomal Proteins
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Brochier Celine
EA EGEE (Evolution, Génomique, Environnement) Université Aix-Marseille I, Centre Saint-Charles, 3 Place Victor Hugo, 13331 Marseille, Cedex 3, France. celine.brochier@up.univ-mrs.fr
Gribaldo Simonetta
Zivanovic Yvan
Confalonieri Fabrice
Forterre Patrick
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Article Info
Journal
Genome biology
Abbr.
Genome Biol
ISSN
1474-760X
Published
2005-00-00
Epub
2005-00-14
Pages
R42
Language
English
Region
England
NLM ID
100960660
PMCID
PMC1175954
Subset
IM
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