Evolutionary Genomics of Salmonella enterica Subspecies

被引:100
作者
Desai, Prerak T. [1 ,2 ]
Porwollik, Steffen [1 ,2 ,3 ]
Long, Fred [1 ,2 ]
Cheng, Pui [1 ,2 ]
Wollam, Aye [4 ]
Clifton, Sandra W. [4 ]
Weinstock, George M. [4 ]
McClelland, Michael [1 ,2 ,3 ]
机构
[1] Univ Calif Irvine, Dept Pathol, Irvine, CA 92717 USA
[2] Univ Calif Irvine, Lab Med, Irvine, CA USA
[3] Vaccine Res Inst San Diego, San Diego, CA USA
[4] Washington Univ, Sch Med, GENOME Inst, St Louis, MO USA
来源
MBIO | 2013年 / 4卷 / 02期
关键词
HORIZONTAL GENE-TRANSFER; PHYLOGENETIC PROFILES; MOSAIC STRUCTURE; HIGH-ACCURACY; H-NS; SEQUENCE; RECOMBINATION; PROTEIN; DNA; IDENTIFICATION;
D O I
10.1128/mBio.00579-12
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Six subspecies are currently recognized in Salmonella enterica. Subspecies I (subspecies enterica) is responsible for nearly all infections in humans and warm-blooded animals, while five other subspecies are isolated principally from cold-blooded animals. We sequenced 21 phylogenetically diverse strains, including two representatives from each of the previously unsequenced five subspecies and 11 diverse new strains from S. enterica subspecies enterica, to put this species into an evolutionary perspective. The phylogeny of the subspecies was partly obscured by abundant recombination events between lineages and a relatively short period of time within which subspeciation took place. Nevertheless, a variety of different tree-building methods gave congruent evolutionary tree topologies for subspeciation. A total of 285 gene families were identified that were recruited into subspecies enterica, and most of these are of unknown function. At least 2,807 gene families were identified in one or more of the other subspecies that are not found in subspecies I or Salmonella bongori. Among these gene families were 13 new candidate effectors and 7 new candidate fimbrial clusters. A third complete type III secretion system not present in subspecies enterica (I) isolates was found in both strains of subspecies salamae (II). Some gene families had complex taxonomies, such as the type VI secretion systems, which were recruited from four different lineages in five of six subspecies. Analysis of nonsynonymous-to-synonymous substitution rates indicated that the more-recently acquired regions in S. enterica are under-going faster fixation rates than the rest of the genome. Recently acquired AT-rich regions, which often encode virulence functions, are under ongoing selection to maintain their high AT content. IMPORTANCE We have sequenced 21 new genomes which encompass the phylogenetic diversity of Salmonella, including strains of the previously unsequenced subspecies arizonae, diarizonae, houtenae, salamae, and indica as well as new diverse strains of subspecies enterica. We have deduced possible evolutionary paths traversed by this very important zoonotic pathogen and identified novel putative virulence factors that are not found in subspecies I. Gene families gained at the time of the evolution of subspecies enterica are of particular interest because they include mechanisms by which this subspecies adapted to warm-blooded hosts.
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页数:12
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共 86 条
  • [31] Dealing with incongruence in phylogenomic analyses
    Galtier, Nicolas
    Daubin, Vincent
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2008, 363 (1512) : 4023 - 4029
  • [32] Gelman A., 1992, Statist. Sci., V7, P457
  • [33] Sister-Scanning: a Monte Carlo procedure for assessing signals in recombinant sequences
    Gibbs, MJ
    Armstrong, JS
    Gibbs, AJ
    [J]. BIOINFORMATICS, 2000, 16 (07) : 573 - 582
  • [34] PATRIC: the Comprehensive Bacterial Bioinformatics Resource with a Focus on Human Pathogenic Species
    Gillespie, Joseph J.
    Wattam, Alice R.
    Cammer, Stephen A.
    Gabbard, Joseph L.
    Shukla, Maulik P.
    Dalay, Oral
    Driscoll, Timothy
    Hix, Deborah
    Mane, Shrinivasrao P.
    Mao, Chunhong
    Nordberg, Eric K.
    Scott, Mark
    Schulman, Julie R.
    Snyder, Eric E.
    Sullivan, Daniel E.
    Wang, Chunxia
    Warren, Andrew
    Williams, Kelly P.
    Xue, Tian
    Yoo, Hyun Seung
    Zhang, Chengdong
    Zhang, Yan
    Will, Rebecca
    Kenyon, Ronald W.
    Sobral, Bruno W.
    [J]. INFECTION AND IMMUNITY, 2011, 79 (11) : 4286 - 4298
  • [35] The salmonella pathogenicity island (SPI)-2 and SPI-1 type III secretion systems allow Salmonella serovar typhimurium to trigger colitis via MyD88-dependent and MyD88-independent mechanisms
    Hapfelmeier, S
    Stecher, B
    Barthel, M
    Kremer, M
    Müller, AJ
    Heikenwalder, M
    Stallmach, T
    Hensel, M
    Pfeffer, K
    Akira, S
    Hardt, WD
    [J]. JOURNAL OF IMMUNOLOGY, 2005, 174 (03) : 1675 - 1685
  • [36] Phylogenetic evidence for recombination in dengue virus
    Holmes, EC
    Worobey, M
    Rambaut, A
    [J]. MOLECULAR BIOLOGY AND EVOLUTION, 1999, 16 (03) : 405 - 409
  • [37] PCAP: A whole-genome assembly program
    Huang, XQ
    Wang, JM
    Aluru, S
    Yang, SP
    Hillier, L
    [J]. GENOME RESEARCH, 2003, 13 (09) : 2164 - 2170
  • [38] Humphries AD, 2001, FEMS MICROBIOL LETT, V201, P121, DOI 10.1016/S0378-1097(01)00250-6
  • [39] Effective-a database of predicted secreted bacterial proteins
    Jehl, Marc-Andre
    Arnold, Roland
    Rattei, Thomas
    [J]. NUCLEIC ACIDS RESEARCH, 2011, 39 : D591 - D595
  • [40] Kent WJ, 2002, GENOME RES, V12, P656, DOI [10.1101/gr.229202, 10.1101/gr.229202. Article published online before March 2002]