Home LiteratureArticle Details
PMID: 19703286 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

A draft genome sequence and functional screen reveals the repertoire of type III secreted proteins of Pseudomonas syringae pathovar tabaci 11528.

BMC genomics ·Vol. 10 ·2009-08-24 ·Pages 395

Studholme DJ, Ibanez SG, MacLean D, Dangl JL, Chang JH, Rathjen JP

Abstract

Pseudomonas syringae is a widespread bacterial pathogen that causes disease on a broad range of economically important plant species. Pathogenicity of P. syringae strains is dependent on the type III secretion system, which secretes a suite of up to about thirty virulence 'effector' proteins into the host cytoplasm where they subvert the eukaryotic cell physiology and disrupt host defences. P. syringae pathovar tabaci naturally causes disease on wild tobacco, the model member of the Solanaceae, a family that includes many crop species as well as on soybean. We used the 'next-generation' Illumina sequencing platform and the Velvet short-read assembly program to generate a 145X deep 6,077,921 nucleotide draft genome sequence for P. syringae pathovar tabaci strain 11528. From our draft assembly, we predicted 5,300 potential genes encoding proteins of at least 100 amino acids long, of which 303 (5.72%) had no significant sequence similarity to those encoded by the three previously fully sequenced P. syringae genomes. Of the core set of Hrp Outer Proteins that are conserved in three previously fully sequenced P. syringae strains, most were also conserved in strain 11528, including AvrE1, HopAH2, HopAJ2, HopAK1, HopAN1, HopI, HopJ1, HopX1, HrpK1 and HrpW1. However, the hrpZ1 gene is partially deleted and hopAF1 is completely absent in 11528. The draft genome of strain 11528 also encodes close homologues of HopO1, HopT1, HopAH1, HopR1, HopV1, HopAG1, HopAS1, HopAE1, HopAR1, HopF1, and HopW1 and a degenerate HopM1'. Using a functional screen, we confirmed that hopO1, hopT1, hopAH1, hopM1', hopAE1, hopAR1, and hopAI1' are part of the virulence-associated HrpL regulon, though the hopAI1' and hopM1' sequences were degenerate with premature stop codons. We also discovered two additional HrpL-regulated effector candidates and an HrpL-regulated distant homologue of avrPto1. The draft genome sequence facilitates the continued development of P. syringae pathovar tabaci on wild tobacco as an attractive model system for studying bacterial disease on plants. The catalogue of effectors sheds further light on the evolution of pathogenicity and host-specificity as well as providing a set of molecular tools for the study of plant defence mechanisms. We also discovered several large genomic regions in Pta 11528 that do not share detectable nucleotide sequence similarity with previously sequenced Pseudomonas genomes. These regions may include horizontally acquired islands that possibly contribute to pathogenicity or epiphytic fitness of Pta 11528.

MeSH Terms
Bacterial Proteins/genetics,metabolism Binding Sites Comparative Genomic Hybridization Conserved Sequence DNA, Bacterial/genetics DNA-Binding Proteins/genetics,metabolism Gene Expression Regulation, Bacterial Genome, Bacterial Genomic Islands Genomics/methods Pseudomonas syringae/genetics,pathogenicity Regulon Sequence Analysis, DNA Sigma Factor/genetics,metabolism Virulence
Chemicals
Bacterial Proteins DNA, Bacterial DNA-Binding Proteins HrpL protein, Pseudomonas syringae Sigma Factor
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Studholme David J
The Sainsbury Laboratory, Norwich, UK. david.studholme@tsl.ac.uk
Ibanez Selena Gimenez
MacLean Daniel
Dangl Jeffery L
Chang Jeff H
Rathjen John P
References (80)
80 references, click to expand
  1. Cultivar-specific avirulence and virulence functions assigned to avrPphF in Pseudomonas syringae pv. phaseolicola, the cause of bean halo-blight disease.
    EMBO J. 2000 Jul 3;19(13):3204-14 PMID: 10880434
  2. Effects of glycosylation on swimming ability and flagellar polymorphic transformation in Pseudomonas syringae pv. tabaci 6605.
    J Bacteriol. 2008 Jan;190(2):764-8 PMID: 18024523
  3. A draft genome sequence of Pseudomonas syringae pv. tomato T1 reveals a type III effector repertoire significantly divergent from that of Pseudomonas syringae pv. tomato DC3000.
    Mol Plant Microbe Interact. 2009 Jan;22(1):52-62 PMID: 19061402
  4. Circular genome visualization and exploration using CGView.
    Bioinformatics. 2005 Feb 15;21(4):537-9 PMID: 15479716
  5. The biosynthetic gene cluster for the beta-lactam antibiotic tabtoxin in Pseudomonas syringae.
    J Antibiot (Tokyo). 2005 Dec;58(12):817-21 PMID: 16506699
  6. Assembling millions of short DNA sequences using SSAKE.
    Bioinformatics. 2007 Feb 15;23(4):500-1 PMID: 17158514
  7. SHARCGS, a fast and highly accurate short-read assembly algorithm for de novo genomic sequencing.
    Genome Res. 2007 Nov;17(11):1697-706 PMID: 17908823
  8. A harpin binding site in tobacco plasma membranes mediates activation of the pathogenesis-related gene HIN1 independent of extracellular calcium but dependent on mitogen-activated protein kinase activity.
    Plant Cell. 2001 May;13(5):1079-93 PMID: 11340183
  9. Gene-boosted assembly of a novel bacterial genome from very short reads.
    PLoS Comput Biol. 2008 Sep 26;4(9):e1000186 PMID: 18818729
  10. Extending assembly of short DNA sequences to handle error.
    Bioinformatics. 2007 Nov 1;23(21):2942-4 PMID: 17893086
  11. Assembly and function of type III secretory systems.
    Annu Rev Microbiol. 2000;54:735-74 PMID: 11018143
  12. Short read fragment assembly of bacterial genomes.
    Genome Res. 2008 Feb;18(2):324-30 PMID: 18083777
  13. Gene-for-gene interactions between Pseudomonas syringae pv. phaseolicola and Phaseolus.
    Mol Plant Microbe Interact. 1991 Nov-Dec;4(6):553-62 PMID: 1666524
  14. A single regulatory gene is sufficient to alter bacterial host range.
    Nature. 2009 Mar 12;458(7235):215-8 PMID: 19182778
  15. Proposed guidelines for a unified nomenclature and phylogenetic analysis of type III Hop effector proteins in the plant pathogen Pseudomonas syringae.
    Mol Plant Microbe Interact. 2005 Apr;18(4):275-82 PMID: 15828679
  16. Type III protein secretion in Pseudomonas syringae.
    Microbes Infect. 2003 Apr;5(4):301-10 PMID: 12706443
  17. The genome of Rhizobium leguminosarum has recognizable core and accessory components.
    Genome Biol. 2006;7(4):R34 PMID: 16640791
  18. Molecular evolution of the lysine decarboxylase-defective phenotype in Shigella sonnei.
    Int J Med Microbiol. 2005 Mar;294(8):503-12 PMID: 15790294
  19. Closing the circle on the discovery of genes encoding Hrp regulon members and type III secretion system effectors in the genomes of three model Pseudomonas syringae strains.
    Mol Plant Microbe Interact. 2006 Nov;19(11):1151-8 PMID: 17073298
  20. Roadmap to new virulence determinants in Pseudomonas syringae: insights from comparative genomics and genome organization.
    Mol Plant Microbe Interact. 2008 Jun;21(6):685-700 PMID: 18624633
  21. Pseudomonas syringae effector AvrPtoB suppresses basal defence in Arabidopsis.
    Plant J. 2006 Aug;47(3):368-82 PMID: 16792692
  22. De novo assembly using low-coverage short read sequence data from the rice pathogen Pseudomonas syringae pv. oryzae.
    Genome Res. 2009 Feb;19(2):294-305 PMID: 19015323
  23. Genomic insights into the contribution of phytopathogenic bacterial plasmids to the evolutionary history of their hosts.
    Annu Rev Phytopathol. 2007;45:129-51 PMID: 17367270
  24. Pseudomonas syringae type III secretion system effectors: repertoires in search of functions.
    Curr Opin Microbiol. 2009 Feb;12(1):53-60 PMID: 19168384
  25. Versatile and open software for comparing large genomes.
    Genome Biol. 2004;5(2):R12 PMID: 14759262
  26. Two unusual pilin sequences from different isolates of Pseudomonas aeruginosa.
    J Bacteriol. 1988 Aug;170(8):3738-41 PMID: 2841299
  27. Wake of the flood: ascribing functions to the wave of type III effector proteins of phytopathogenic bacteria.
    Curr Opin Microbiol. 2004 Feb;7(1):11-8 PMID: 15036134
  28. Next-generation DNA sequencing methods.
    Annu Rev Genomics Hum Genet. 2008;9:387-402 PMID: 18576944
  29. Genome sequence of the plant pathogen Ralstonia solanacearum.
    Nature. 2002 Jan 31;415(6871):497-502 PMID: 11823852
  30. GenomeMatcher: a graphical user interface for DNA sequence comparison.
    BMC Bioinformatics. 2008 Sep 16;9:376 PMID: 18793444
  31. De novo assembly of the Pseudomonas syringae pv. syringae B728a genome using Illumina/Solexa short sequence reads.
    FEMS Microbiol Lett. 2009 Feb;291(1):103-11 PMID: 19077061
  32. Identification of a pathogenicity island, which contains genes for virulence and avirulence, on a large native plasmid in the bean pathogen Pseudomonas syringae pathovar phaseolicola.
    Proc Natl Acad Sci U S A. 1999 Sep 14;96(19):10875-80 PMID: 10485919
  33. The Pseudomonas syringae Hrp pathogenicity island has a tripartite mosaic structure composed of a cluster of type III secretion genes bounded by exchangeable effector and conserved effector loci that contribute to parasitic fitness and pathogenicity in plants.
    Proc Natl Acad Sci U S A. 2000 Apr 25;97(9):4856-61 PMID: 10781092
  34. Black holes, antivirulence genes, and gene inactivation in the evolution of bacterial pathogens.
    FEMS Microbiol Lett. 2007 Feb;267(1):1-8 PMID: 17233672
  35. The complete genome sequence of the Arabidopsis and tomato pathogen Pseudomonas syringae pv. tomato DC3000.
    Proc Natl Acad Sci U S A. 2003 Sep 2;100(18):10181-6 PMID: 12928499
  36. Harpin of Pseudomonas syringae pv. phaseolicola harbors a protein binding site.
    Mol Plant Microbe Interact. 2005 Jan;18(1):60-6 PMID: 15672819
  37. De novo bacterial genome sequencing: millions of very short reads assembled on a desktop computer.
    Genome Res. 2008 May;18(5):802-9 PMID: 18332092
  38. Velvet: algorithms for de novo short read assembly using de Bruijn graphs.
    Genome Res. 2008 May;18(5):821-9 PMID: 18349386
  39. Nucleotide sequence and evolution of the five-plasmid complement of the phytopathogen Pseudomonas syringae pv. maculicola ES4326.
    J Bacteriol. 2004 Aug;186(15):5101-15 PMID: 15262947
  40. Application of 'next-generation' sequencing technologies to microbial genetics.
    Nat Rev Microbiol. 2009 Apr;7(4):287-96 PMID: 19287448
  41. Detection of and response to signals involved in host-microbe interactions by plant-associated bacteria.
    Microbiol Mol Biol Rev. 2005 Mar;69(1):155-94 PMID: 15755957
  42. Inhibition of Glutamine Synthetase from Pea by Tabtoxinine-beta-lactam.
    Plant Physiol. 1983 Apr;71(4):912-5 PMID: 16662928
  43. Exposure to host resistance mechanisms drives evolution of bacterial virulence in plants.
    Curr Biol. 2005 Dec 20;15(24):2230-5 PMID: 16360685
  44. Pathoadaptive mutations that enhance virulence: genetic organization of the cadA regions of Shigella spp.
    Infect Immun. 2001 Dec;69(12):7471-80 PMID: 11705922
  45. Excision from tRNA genes of a large chromosomal region, carrying avrPphB, associated with race change in the bean pathogen, Pseudomonas syringae pv. phaseolicola.
    Mol Microbiol. 2000 Oct;38(2):186-97 PMID: 11069647
  46. Quorum sensing in plant-pathogenic bacteria.
    Annu Rev Phytopathol. 2003;41:455-82 PMID: 12730390
  47. Functional analysis of the role of Fur in the virulence of Pseudomonas syringae pv. tabaci 11528: Fur controls expression of genes involved in quorum-sensing.
    Biochem Biophys Res Commun. 2008 Feb 8;366(2):281-7 PMID: 18023417
  48. Bacterial adhesion and entry into host cells.
    Cell. 2006 Feb 24;124(4):715-27 PMID: 16497583
  49. Whole-genome sequencing and assembly with high-throughput, short-read technologies.
    PLoS One. 2007 May 30;2(5):e484 PMID: 17534434
  50. The Pfam protein families database.
    Nucleic Acids Res. 2008 Jan;36(Database issue):D281-8 PMID: 18039703
  51. High quality draft sequences for prokaryotic genomes using a mix of new sequencing technologies.
    BMC Genomics. 2008 Dec 16;9:603 PMID: 19087275
  52. Cloning and molecular characterization of a soluble epoxide hydrolase from Aspergillus niger that is related to mammalian microsomal epoxide hydrolase.
    Biochem J. 1999 Nov 15;344 Pt 1:273-80 PMID: 10548561
  53. The HrpZ proteins of Pseudomonas syringae pvs. syringae, glycinea, and tomato are encoded by an operon containing Yersinia ysc homologs and elicit the hypersensitive response in tomato but not soybean.
    Mol Plant Microbe Interact. 1995 Sep-Oct;8(5):717-32 PMID: 7579616
  54. Evolution of the core genome of Pseudomonas syringae, a highly clonal, endemic plant pathogen.
    Appl Environ Microbiol. 2004 Apr;70(4):1999-2012 PMID: 15066790
  55. Whole-genome pyrosequencing of an epidemic multidrug-resistant Acinetobacter baumannii strain belonging to the European clone II group.
    Antimicrob Agents Chemother. 2008 Jul;52(7):2616-25 PMID: 18411315
  56. A Pseudomonas syringae pv. tomato DC3000 mutant lacking the type III effector HopQ1-1 is able to cause disease in the model plant Nicotiana benthamiana.
    Plant J. 2007 Jul;51(1):32-46 PMID: 17559511
  57. Mapping short DNA sequencing reads and calling variants using mapping quality scores.
    Genome Res. 2008 Nov;18(11):1851-8 PMID: 18714091
  58. DNA relatedness among the pathovars of Pseudomonas syringae and description of Pseudomonas tremae sp. nov. and Pseudomonas cannabina sp. nov. (ex Sutic and Dowson 1959).
    Int J Syst Bacteriol. 1999 Apr;49 Pt 2:469-78 PMID: 10319466
  59. Indicator technique for antimetabolic toxin production by phytopathogenic species of pseudomonas.
    Appl Environ Microbiol. 1980 Jan;39(1):25-9 PMID: 16345492
  60. The new paradigm of flow cell sequencing.
    Genome Res. 2008 Jun;18(6):839-46 PMID: 18519653
  61. A high-throughput, near-saturating screen for type III effector genes from Pseudomonas syringae.
    Proc Natl Acad Sci U S A. 2005 Feb 15;102(7):2549-54 PMID: 15701698
  62. "Black holes" and bacterial pathogenicity: a large genomic deletion that enhances the virulence of Shigella spp. and enteroinvasive Escherichia coli.
    Proc Natl Acad Sci U S A. 1998 Mar 31;95(7):3943-8 PMID: 9520472
  63. Subterfuge and manipulation: type III effector proteins of phytopathogenic bacteria.
    Annu Rev Microbiol. 2006;60:425-49 PMID: 16753033
  64. Fragment assembly with short reads.
    Bioinformatics. 2004 Sep 1;20(13):2067-74 PMID: 15059830
  65. Elicitation of hypersensitive cell death by extracellularly targeted HrpZPsph produced in planta.
    Mol Plant Microbe Interact. 2000 Dec;13(12):1366-74 PMID: 11106029
  66. Profiling the secretomes of plant pathogenic Proteobacteria.
    FEMS Microbiol Rev. 2005 Apr;29(2):331-60 PMID: 15808747
  67. Erwinia chrysanthemi tolC is involved in resistance to antimicrobial plant chemicals and is essential for phytopathogenesis.
    J Bacteriol. 2003 Oct;185(19):5772-8 PMID: 13129948
  68. The generic genome browser: a building block for a model organism system database.
    Genome Res. 2002 Oct;12(10):1599-610 PMID: 12368253
  69. Comparison of the complete genome sequences of Pseudomonas syringae pv. syringae B728a and pv. tomato DC3000.
    Proc Natl Acad Sci U S A. 2005 Aug 2;102(31):11064-9 PMID: 16043691
  70. Genomic mining type III secretion system effectors in Pseudomonas syringae yields new picks for all TTSS prospectors.
    Trends Microbiol. 2002 Oct;10(10):462-9 PMID: 12377556
  71. ALLPATHS: de novo assembly of whole-genome shotgun microreads.
    Genome Res. 2008 May;18(5):810-20 PMID: 18340039
  72. Genome sequence analysis of the emerging human pathogenic acetic acid bacterium Granulibacter bethesdensis.
    J Bacteriol. 2007 Dec;189(23):8727-36 PMID: 17827295
  73. The role of pectate lyase and the jasmonic acid defense response in Pseudomonas viridiflava virulence.
    Mol Plant Microbe Interact. 2007 Feb;20(2):146-58 PMID: 17313166
  74. Comparative analyses of the complete genome sequences of Pierce's disease and citrus variegated chlorosis strains of Xylella fastidiosa.
    J Bacteriol. 2003 Feb;185(3):1018-26 PMID: 12533478
  75. Pseudomonas syringae lytic transglycosylases coregulated with the type III secretion system contribute to the translocation of effector proteins into plant cells.
    J Bacteriol. 2007 Nov;189(22):8277-89 PMID: 17827286
  76. Large-insert genome analysis technology detects structural variation in Pseudomonas aeruginosa clinical strains from cystic fibrosis patients.
    Genomics. 2008 Jun;91(6):530-7 PMID: 18445516
  77. Basic local alignment search tool.
    J Mol Biol. 1990 Oct 5;215(3):403-10 PMID: 2231712
  78. Regulatory interactions between the Hrp type III protein secretion system and coronatine biosynthesis in Pseudomonas syringae pv. tomato DC3000.
    Microbiology (Reading). 2000 Oct;146 ( Pt 10):2447-2456 PMID: 11021921
  79. Whole-genome sequence analysis of Pseudomonas syringae pv. phaseolicola 1448A reveals divergence among pathovars in genes involved in virulence and transposition.
    J Bacteriol. 2005 Sep;187(18):6488-98 PMID: 16159782
  80. Identifying type III effectors of plant pathogens and analyzing their interaction with plant cells.
    Curr Opin Microbiol. 2003 Feb;6(1):20-8 PMID: 12615215
Article Info
Journal
BMC genomics
Abbr.
BMC Genomics
ISSN
1471-2164
Published
2009-08-24
Epub
2009-00-24
Pages
395
Language
English
Region
England
NLM ID
100965258
PMCID
PMC2745422
Subset
IM
Grants
NIGMS NIH HHS · R01 GM066025 · United States
Corrections
ErratumIn
-
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com