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PMID: 11734060 Published · epublish English Journal Article

Genome trees constructed using five different approaches suggest new major bacterial clades.

BMC evolutionary biology ·Vol. 1 ·2001-10-20 ·Pages 8

Wolf YI, Rogozin IB, Grishin NV, Tatusov RL, Koonin EV

Abstract

The availability of multiple complete genome sequences from diverse taxa prompts the development of new phylogenetic approaches, which attempt to incorporate information derived from comparative analysis of complete gene sets or large subsets thereof. Such attempts are particularly relevant because of the major role of horizontal gene transfer and lineage-specific gene loss, at least in the evolution of prokaryotes. Five largely independent approaches were employed to construct trees for completely sequenced bacterial and archaeal genomes: i) presence-absence of genomes in clusters of orthologous genes; ii) conservation of local gene order (gene pairs) among prokaryotic genomes; iii) parameters of identity distribution for probable orthologs; iv) analysis of concatenated alignments of ribosomal proteins; v) comparison of trees constructed for multiple protein families. All constructed trees support the separation of the two primary prokaryotic domains, bacteria and archaea, as well as some terminal bifurcations within the bacterial and archaeal domains. Beyond these obvious groupings, the trees made with different methods appeared to differ substantially in terms of the relative contributions of phylogenetic relationships and similarities in gene repertoires caused by similar life styles and horizontal gene transfer to the tree topology. The trees based on presence-absence of genomes in orthologous clusters and the trees based on conserved gene pairs appear to be strongly affected by gene loss and horizontal gene transfer. The trees based on identity distributions for orthologs and particularly the tree made of concatenated ribosomal protein sequences seemed to carry a stronger phylogenetic signal. The latter tree supported three potential high-level bacterial clades,: i) Chlamydia-Spirochetes, ii) Thermotogales-Aquificales (bacterial hyperthermophiles), and ii) Actinomycetes-Deinococcales-Cyanobacteria. The latter group also appeared to join the low-GC Gram-positive bacteria at a deeper tree node. These new groupings of bacteria were supported by the analysis of alternative topologies in the concatenated ribosomal protein tree using the Kishino-Hasegawa test and by a census of the topologies of 132 individual groups of orthologous proteins. Additionally, the results of this analysis put into question the sister-group relationship between the two major archaeal groups, Euryarchaeota and Crenarchaeota, and suggest instead that Euryarchaeota might be a paraphyletic group with respect to Crenarchaeota. We conclude that, the extensive horizontal gene flow and lineage-specific gene loss notwithstanding, extension of phylogenetic analysis to the genome scale has the potential of uncovering deep evolutionary relationships between prokaryotic lineages.

MeSH Terms
Bacteria/classification,genetics Conserved Sequence/genetics Evolution, Molecular Gene Order/genetics Gene Transfer, Horizontal Genes, Archaeal/genetics Genes, Bacterial/genetics Genome, Archaeal Genome, Bacterial Genomics/methods Likelihood Functions Phylogeny Prokaryotic Cells/metabolism Ribosomal Proteins/genetics Sequence Alignment Species Specificity
Chemicals
Ribosomal Proteins
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Wolf Y I
National Center for Biotechnology Information, National Library of Medicine, National Institutes of Health, Bethesda, MD 20894, USA. wolf@ncbi.nlm.nih.gov
Rogozin I B
Grishin N V
Tatusov R L
Koonin E V
References (45)
45 references, click to expand
  1. Construction of phylogenetic trees.
    Science. 1967 Jan 20;155(3760):279-84 PMID: 5334057
  2. Determining divergence times of the major kingdoms of living organisms with a protein clock.
    Science. 1996 Jan 26;271(5248):470-7 PMID: 8560259
  3. Genome alignment, evolution of prokaryotic genome organization, and prediction of gene function using genomic context.
    Genome Res. 2001 Mar;11(3):356-72 PMID: 11230160
  4. Conservation of gene order: a fingerprint of proteins that physically interact.
    Trends Biochem Sci. 1998 Sep;23(9):324-8 PMID: 9787636
  5. Gene order is not conserved in bacterial evolution.
    Trends Genet. 1996 Aug;12(8):289-90 PMID: 8783936
  6. T-Coffee: A novel method for fast and accurate multiple sequence alignment.
    J Mol Biol. 2000 Sep 8;302(1):205-17 PMID: 10964570
  7. The neighbor-joining method: a new method for reconstructing phylogenetic trees.
    Mol Biol Evol. 1987 Jul;4(4):406-25 PMID: 3447015
  8. Mosaic bacterial chromosomes: a challenge en route to a tree of genomes.
    Bioessays. 1999 Feb;21(2):99-104 PMID: 10193183
  9. Comparison of archaeal and bacterial genomes: computer analysis of protein sequences predicts novel functions and suggests a chimeric origin for the archaea.
    Mol Microbiol. 1997 Aug;25(4):619-37 PMID: 9379893
  10. Phylogeny of 33 ribosomal and six other proteins encoded in an ancient gene cluster that is conserved across prokaryotic genomes: influence of excluding poorly alignable sites from analysis.
    Int J Syst Evol Microbiol. 2000 Jul;50 Pt 4:1655-63 PMID: 10939673
  11. Whole genome-based phylogenetic analysis of free-living microorganisms.
    Nucleic Acids Res. 1999 Nov 1;27(21):4218-22 PMID: 10518613
  12. Estimation of the number of amino acid substitutions per site when the substitution rate varies among sites.
    J Mol Evol. 1995 Nov;41(5):675-9 PMID: 18345592
  13. The use of gene clusters to infer functional coupling.
    Proc Natl Acad Sci U S A. 1999 Mar 16;96(6):2896-901 PMID: 10077608
  14. Phylogenetic classification and the universal tree.
    Science. 1999 Jun 25;284(5423):2124-9 PMID: 10381871
  15. Is there a phylogenetic signal in prokaryote proteins?
    J Mol Evol. 1999 Jul;49(1):98-107 PMID: 10368438
  16. Estimation of evolutionary distances from protein spatial structures.
    J Mol Evol. 1997 Oct;45(4):359-69 PMID: 9321415
  17. The rapid generation of mutation data matrices from protein sequences.
    Comput Appl Biosci. 1992 Jun;8(3):275-82 PMID: 1633570
  18. Gene and context: integrative approaches to genome analysis.
    Adv Protein Chem. 2000;54:345-79 PMID: 10829232
  19. From complete genomes to measures of substitution rate variability within and between proteins.
    Genome Res. 2000 Jul;10(7):991-1000 PMID: 10899148
  20. Genome phylogeny based on gene content.
    Nat Genet. 1999 Jan;21(1):108-10 PMID: 9916801
  21. Bacterial evolution.
    Microbiol Rev. 1987 Jun;51(2):221-71 PMID: 2439888
  22. Metabolism and evolution of Haemophilus influenzae deduced from a whole-genome comparison with Escherichia coli.
    Curr Biol. 1996 Mar 1;6(3):279-91 PMID: 8805245
  23. Lateral genomics.
    Trends Cell Biol. 1999 Dec;9(12):M5-8 PMID: 10611671
  24. Genome sequence comparison and scenarios for gene rearrangements: a test case.
    Genomics. 1995 Nov 20;30(2):299-311 PMID: 8586431
  25. Converting amino acid alignment scores into measures of evolutionary time: a simulation study of various relationships.
    J Mol Evol. 1997 Apr;44(4):361-70 PMID: 9089075
  26. Pervasiveness of gene conservation and persistence of duplicates in cellular genomes.
    J Mol Evol. 1999 Nov;49(5):591-600 PMID: 10552040
  27. The root of the universal tree and the origin of eukaryotes based on elongation factor phylogeny.
    Proc Natl Acad Sci U S A. 1996 Jul 23;93(15):7749-54 PMID: 8755547
  28. Automatic detection of conserved gene clusters in multiple genomes by graph comparison and P-quasi grouping.
    Nucleic Acids Res. 2000 Oct 15;28(20):4029-36 PMID: 11024184
  29. Bacterial phylogeny based on comparative sequence analysis.
    Electrophoresis. 1998 Apr;19(4):554-68 PMID: 9588802
  30. A molecular view of microbial diversity and the biosphere.
    Science. 1997 May 2;276(5313):734-40 PMID: 9115194
  31. Inferring phylogenies from protein sequences by parsimony, distance, and likelihood methods.
    Methods Enzymol. 1996;266:418-27 PMID: 8743697
  32. Molecular systematic studies of eubacteria, using sigma70-type sigma factors of group 1 and group 2.
    J Bacteriol. 1997 Mar;179(5):1734-47 PMID: 9045836
  33. Inversions in the Chromosomes of Drosophila Pseudoobscura.
    Genetics. 1938 Jan;23(1):28-64 PMID: 17246876
  34. The evolutionary history of ribosomal protein RpS14: horizontal gene transfer at the heart of the ribosome.
    Trends Genet. 2000 Dec;16(12):529-33 PMID: 11102698
  35. Phylogenetic invariants for genome rearrangements.
    J Comput Biol. 1999 Fall-Winter;6(3-4):431-45 PMID: 10582577
  36. A phylogenomic approach to microbial evolution.
    Nucleic Acids Res. 2001 Jan 15;29(2):545-52 PMID: 11139625
  37. Complete genomes in WWW Entrez: data representation and analysis.
    Bioinformatics. 1999 Jul-Aug;15(7-8):536-43 PMID: 10487861
  38. Evidence for lateral gene transfer between Archaea and bacteria from genome sequence of Thermotoga maritima.
    Nature. 1999 May 27;399(6734):323-9 PMID: 10360571
  39. Eukaryotic signalling domain homologues in archaea and bacteria. Ancient ancestry and horizontal gene transfer.
    J Mol Biol. 1999 Jun 18;289(4):729-45 PMID: 10369758
  40. Evidence for massive gene exchange between archaeal and bacterial hyperthermophiles.
    Trends Genet. 1998 Nov;14(11):442-4 PMID: 9825671
  41. A genomic perspective on protein families.
    Science. 1997 Oct 24;278(5338):631-7 PMID: 9381173
  42. The winds of (evolutionary) change: breathing new life into microbiology.
    J Bacteriol. 1994 Jan;176(1):1-6 PMID: 8282683
  43. The COG database: a tool for genome-scale analysis of protein functions and evolution.
    Nucleic Acids Res. 2000 Jan 1;28(1):33-6 PMID: 10592175
  44. Gapped BLAST and PSI-BLAST: a new generation of protein database search programs.
    Nucleic Acids Res. 1997 Sep 1;25(17):3389-402 PMID: 9254694
  45. Universal trees based on large combined protein sequence data sets.
    Nat Genet. 2001 Jul;28(3):281-5 PMID: 11431701
Article Info
Journal
BMC evolutionary biology
Abbr.
BMC Evol Biol
ISSN
1471-2148
Published
2001-10-20
Epub
2001-00-20
Pages
8
Language
English
Region
England
NLM ID
100966975
PMCID
PMC60490
Subset
IM
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