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. 2016 Feb 8;7:109. doi: 10.3389/fmicb.2016.00109

Complete Genome Sequence Analysis of Pandoraea pnomenusa Type Strain DSM 16536T Isolated from a Cystic Fibrosis Patient

Yan-Lue Lim 1, Robson Ee 1, Delicia Yong 2, Choo-Yee Yu 1, Geik-Yong Ang 1, Kok-Keng Tee 2, Wai-Fong Yin 1, Kok-Gan Chan 1,*
PMCID: PMC4744841  PMID: 26903988

Background

The genus of Pandoraea was first proposed in 2000 following the isolation from the sputum of cystic fibrosis patients (Coenye et al., 2000). Five species were initially assigned to the novel genus namely Pandoraea apista, Pandoraea pulmonicola, Pandoraea pnomenusa, Pandoraea sputorum, and Pandoraea norimbergensis but the description of four new species and another four genomospecies in the subsequent years led to a total of nine species and four genomospecies within the genus of Pandoraea (Daneshvar et al., 2001; Anandham et al., 2010; Sahin et al., 2011). The isolation of Pandoraea spp. from various environmental samples such as water, sludge, and soils have been reported, but to date, only P. pnomenusa, P. apista, P. pulmonicola, and P. sputorum were isolated from clinical specimens such as blood, sputum and bronchial fluid of patients with cystic fibrosis or chronic lung diseases (Coenye et al., 2000; Daneshvar et al., 2001; Stryjewski et al., 2003; Han-Jen et al., 2013). Members of Pandoraea tend to exhibit broad resistance to ampicillin, extended-spectrum cephalosporins, aztreonam, aminoglycosides, and meropenem but they are sensitive to imipenem (Daneshvar et al., 2001; Stryjewski et al., 2003). However, the clinical significance and prevalence of these multi-drug resistant bacteria among patients with cystic fibrosis or respiratory diseases remained unknown since Pandoraea spp. are usually misidentified as Burkholderia cepacia complex, Ralstonia pickettii, or Ralstonia paucula (Segonds et al., 2003). Ambiguity in differentiating between B. cepacia complex, Ralstonia spp. and Pandoraea spp. can be resolved by 16S ribosomal DNA-PCR (Coenye et al., 2001) and gyrB gene restriction fragment length polymorphism (Coenye and LiPuma, 2002) but the limited use of molecular typing methods in routine clinical microbiological laboratory has resulted in the underreporting of Pandoraea spp. in clinical cases.

The first case of mortality due to P. pnomenusa was documented in 2003 whereby the patient developed bacteremia and subsequently died from multiple organ failure after undergoing a bilateral lung transplant operation (Stryjewski et al., 2003). Isolation of P. pnomenusa from purulent secretions collected by bronchoalveolar lavage on postoperative day 10 indicated that the lungs could be the source of infection and the cause of fatality was subsequently established through the repeated isolation of P. pnomenusa from blood cultures on postoperative day 8 and at the time of death (Stryjewski et al., 2003). In a study conducted by Costello et al. (2011), P. pnomenusa was found to be invasive in lung cells expressing cystic fibrosis transmembrane regulator and the species exhibited the greatest level of transepithelial translocation when compared to P. pulmonicola, P. apista, and B. cenocepacia. Reports of Pandoraea -associated bacteraemia and the subsequent isolation of P. pnomenusa from blood culture suggest this species may be highly pathogenic (Daneshvar et al., 2001; Stryjewski et al., 2003; Costello et al., 2011). Furthermore, P. pnomenusa could trigger the accumulation of pro-inflammatory cytokines, particularly interleukins 8 and 6, which could lead to lung tissue damage. Chronic lung inflammation is one of the main causes of fatality in individuals with cystic fibrosis and hence, the ability of P. pnomenusa to elicit the secretion of interleukins 8 and 6 as a part of the host response may serve as one of the mechanisms of pathogenesis for this species (Caraher et al., 2008).

In the last decade, only a few studies have been done to investigate the underlying pathogenic mechanisms of P. pnomenusa. In order to gain a better understanding of this species, we studied the complete genome sequence of P. pnomenusa type strain DSM 16536T which was isolated from the sputum of a cystic fibrosis patient originating from Edinburgh, United Kingdom. Availability of this genome sequence of P. pnomenusa DSM 16536T will serve as a basis for further in-depth analysis of the virulence, pathogenesis and genetics of P. pnomenusa.

Materials and methods

DNA purification

P. pnomenusa DSM 16536T, a clinical strain isolated from a cystic fibrosis patient in United Kingdom, was acquired from the German Collection of Microorganisms and Cell cultures (DSMZ). This bacterium was grown aerobically in LB broth at 37°C. Isolation and purification of bacterial genomic DNA was performed with MasterPure DNA Purification Kit (EpiCenter, CA, USA) according to the manufacturer's instruction. The purity, quality and quantity of purified genomic DNA were assessed using NanoDrop 2000 UV-Vis spectrophotometer (Thermo Scientific, MA, USA) and Qubit 2.0 fluorometer (Life Technologies, MA, USA), respectively.

Genome sequencing and assembly

The sheared genomic DNA of P. pnomenusa DSM 16536T was prepared following the “Procedure a Checklist-20kb Template Preparation using BluePippinTM Size Selection” protocol, in which size selection of the constructed SMRTbell templates was performed with a cutoff length of 7kb. Purified and size-selected SMRTbell library was sequenced on four SMRT cells using P5C3 chemistry on Pacific Biosciences (PacBio) Single Molecule, Real-Time (SMRT) RS II instrument. Sub-reads which were generated from the raw sequencing reads after adapter removal were further filtered and mapped prior to de novo assembly using Hierarchical Genome Assembly Process (HGAP) version 3. The polished assembly generated was examined for circularity based on the presence of overlapping sequences at both ends of the contig. Location of the overlapping sequence were determined using Gepard dotplot program (Krumsiek et al., 2007). Subsequently, circularization of the contig was performed by removing one of the overlapping ends to generate a blunt-ended circular assembly yielding a complete genome map.

Genome annotation

Gene prediction and annotation were performed using Rapid Annotation Search Tool (RAST) (Aziz et al., 2008), Rapid Prokaryotic Genome Annotation (Prokka) (Seemann, 2014), and NCBI Prokaryotic Genome Annotation Pipeline (PGAP) based on the Best-placed reference protein set and GeneMarkS+. Additional gene identification was done using KEGG database (Kanehisa et al., 2015), Pathosystem Resource Integration Center (PATRIC) (Wattam et al., 2014), and IMG ER (Markowitz et al., 2009). Both IMG ER and NCBI PGAP were used for the identification of tRNA and rRNA genes. Supplementary annotation of antimicrobial resistance genes was analyzed using ResFinder (Carattoli et al., 2014).

Results

Genome characteristics

The genome of P. pnomenusa DSM 16536T consists of a single circular chromosome of 5,389,285bp with a mean genome coverage of 244.62-fold and an average GC content of 64.87% (Table 1). No plasmid was found in the genome sequence of this bacterium. A total of 4811 genes was predicted of which 4586 genes were identified as protein coding genes. There are 88 RNA genes consisting of 12 rRNA (4 5S rRNA, 4 16S rRNA, and 4 23S rRNA) and 65 tRNA genes. Besides GenBank (accession number: CP009553.2; http://www.ncbi.nlm.nih.gov/nuccore/CP009553.2), in which the genome sequences data are available in FASTA, annotated GenBank flat file, graphical and ASN.1 formats, functional annotation results of this genome are also accessible through KEGG resources.

Table 1.

Genome statistics of Pandoraea pnomenusa DSM 16536T.

Attribute Value % of Total
Genome size (bp) 5,395,224 100.00
DNA coding (bp) 4,748,947 88.02
DNA G+C (bp) 3,499,739 64.87
DNA scaffolds 1 100.00
Total genes 4862 100.00
Protein coding genes 4774 98.19
RNA genes 88 1.81
Pseudo genes 508 10.45
Genes in internal clusters 4042 83.13
Genes with function prediction 4092 84.16
Genes assigned to COGs 3656 75.20
Genes with Pfam domains 4181 85.99
Genes with signal peptides 380 7.82
Genes with transmembrane helices 1195 24.58
CRISPR repeats 1

The overview of this genome record can be attained from the complete genome directory of KEGG ORGANISMS database (http://www.genome.jp/kegg/catalog/org_list.html) with the organism prefix of ppnm. Further, through the ppnm hyperlink, cross-reference information in the form of protein, and small-molecules interaction network maps (http://www.genome.jp/kegg-bin/show_organism?menu_type=pathway_maps&org=ppnm), BRITE biological systems hierarchical classifications (http://www.genome.jp/kegg-bin/show_organism?menu_type=gene_catalogs&org=ppnm), KEGG modules (http://www.genome.jp/kegg-bin/show_organism?menu_type=pathway_modules&org=ppnm), and whole genome map which can be visualized using genome map browser (http://www.genome.jp/kegg-bin/show_genomemap_top?org_id=ppnm) can be accessed through the subdirectory panel. Further insights to the potential pathogenicity of this clinical strain can also be gained from its genomic information through KEGG Pathogen resource (http://www.genome.jp/kegg/disease/pathogen.html).

Virulence genes

From the complete genome sequences, various genes which could potentially contributing to pathogenicity were identified using specialty gene annotations in PATRIC server via a combination of few curated virulence factors databases including Virulence Factors Database (VFDB), Victors and PATRIC curated virulence database (PATRIC_VF). A total of 16 virulence factors were identified, namely: Phosphoribosylformylglycinamidine cyclo-ligase (LV28_09200), RNA polymerase sigma factor RpoE (LV28_09850), phosphoenolpyruvate synthase (LV28_01060), RecA protein (LV28_10630), aminase component of anthranilate synthase (LV28_11620), imidazole glycerol phosphate synthase cyclase subunit (LV28_12510), translation elongation factor Tu (LV28_12945; LV28_13105), argininosuccinate synthase (LV28_16050), endonuclease III (LV28_23310), 3-isopropylmalate dehydrogenase (LV28_23930), 3-isopropylmalate dehydrogenase (LV28_23930), RNA-binding protein Hfq (LV28_24345), chorismate synthase (LV28_04475), acetolactate synthase large and small subunit (LV28_04625 and LV28_04620), and chemotaxis protein CheY (LV28_14025). These identified virulence factors are well-characterized virulence determinants in the Burkholderia pseudomallei (close phylogenetic neighbor of P. pnomenusa) and other pathogens such as Listeria monocytogens, Actinobacillus pleuropneumoniae, Neisseria meningitis, and Shigella flexneri (Sun et al., 2000; Sheehan et al., 2003; Dons et al., 2004; Pilatz et al., 2006; Sharma and Payne, 2006; Thongboonkerd et al., 2007). Hence, these virulence factors identified could serve as promising gene candidates in studying the underlying pathogenic mechanism of persistent P. pnomenusa infection. Furthermore, previous studies also demonstrated targeting against these genes resulted in attenuation suggesting that these predicted virulence factors are potential targets for new therapeutic strategies and vaccines development (Cuccui et al., 2007; Breitbach et al., 2008; Srilunchang et al., 2009).

Antimicrobial resistance genes

From RAST analysis, a total of 44 genes responsible for antibiotic resistance were identified in the genome. Majority of these genes were previously characterized in various pathogens, including Pseudomonas aeruginosa and Escherichia coli (Morita et al., 2012; Weatherspoon-Griffin et al., 2014). Full details of these antibiotic resistance genes, including efflux pumps-encoding genes and beta-lactamases-encoding genes (Okusu et al., 1996; Piddock, 2006; Poole, 2011; Poirel et al., 2012; Morita et al., 2014, 2015; Weatherspoon-Griffin et al., 2014; Podnecky et al., 2015) are available in Supplementary Table 1. Furthermore, analysis of antimicrobial resistance gene with ResFinder also revealed the presence of OXA-62, a carbapenem-hydrolyzing oxacillinase, further affirming the finding of Schneider et al. (2006) which demonstrated that OXA-62 is distributed specifically within the P. pnomenusa species and producing the imipenem-resistant phenotype.

Data access

The assembled and annotated genome of P. pnomenusa DSM 16536T described in this paper has been deposited in GenBank (accession number of CP009553.2); KEGG database (entry number of T03411) and JGI portal with GOLD ID of Gp0107448 and IMG taxon ID of 2606217238.

Author contributions

YL, RE, DY, CY, GA, WY perform the experiments and collected the data. KC conceived the idea, obtained the funding and WY managed the finance of the project. YL, RE, DY, CY, GA, WY, and KT prepared the draft, and KC proofread the final draft. All authors approved the final manuscript.

Conflict of interest statement

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

Acknowledgments

This project was financially funded by University of Malaya-Ministry of Higher Education High Impact Research Grants (UM.C/625/1/HIR/MOHE/CHAN/01, Grant No. A-000001-50001) and UM-MOHE HIR Grant (UM.C/625/1/HIR/MOHE/CHAN/14/1, no. H-50001-A000027) which was awarded to KC.

Supplementary material

The Supplementary Material for this article can be found online at: http://journal.frontiersin.org/article/10.3389/fmicb.2016.00109

References

  1. Anandham R., Indiragandhi P., Kwon S. W., Sa T. M., Jeon C. O., Kim Y. K., et al. (2010). Pandoraea thiooxydans sp. nov., a facultatively chemolithotrophic, thiosulfate-oxidizing bacterium isolated from rhizosphere soils of sesame (Sesamum indicum L.). Int. J. Syst. Evol. Microbiol. 60, 21–26. 10.1099/ijs.0.012823-0 [DOI] [PubMed] [Google Scholar]
  2. Aziz R. K., Bartels D., Best A. A., DeJongh M., Disz T., Edwards R. A., et al. (2008). The RAST Server: rapid annotations using subsystems technology. BMC Genomics 9:75. 10.1186/1471-2164-9-75 [DOI] [PMC free article] [PubMed] [Google Scholar]
  3. Breitbach K., Köhler J., Steinmetz I. (2008). Induction of protective immunity against Burkholderia pseudomallei using attenuated mutants with defects in the intracellular life cycle. Trans. R. Soc. Trop. Med. Hyg. 102(Suppl. 1), S89–S94. 10.1016/S0035-9203(08)70022-1 [DOI] [PubMed] [Google Scholar]
  4. Caraher E., Collins J., Herbert G., Murphy P. G., Gallagher C. G., Crowe M. J., et al. (2008). Evaluation of in vitro virulence characteristics of the genus Pandoraea in lung epithelial cells. J. Med. Microbiol. 57, 15–20. 10.1099/jmm.0.47544-0 [DOI] [PubMed] [Google Scholar]
  5. Carattoli A., Zankari E., García-Fernández A., Voldby Larsen M., Lund O., Villa L., et al. (2014). In silico detection and typing of plasmids using PlasmidFinder and plasmid multilocus sequence typing. Antimicrob. Agents Chemother. 58, 3895–3903. 10.1128/AAC.02412-14 [DOI] [PMC free article] [PubMed] [Google Scholar]
  6. Coenye T., Falsen E., Hoste B., Ohlen M., Goris J., Govan J. R., et al. (2000). Description of Pandoraea gen. nov. with Pandoraea apista sp. nov., Pandoraea pulmonicola sp. nov., Pandoraea pnomenusa sp. nov., Pandoraea sputorum sp. nov. and Pandoraea norimbergensis comb. nov. Int. J. Syst. Evol. Microbiol. 50, 887–899. 10.1099/00207713-50-2-887 [DOI] [PubMed] [Google Scholar]
  7. Coenye T., LiPuma J. J. (2002). Use of the gyrB gene for the identification of Pandoraea species. FEMS Microbiol. Lett. 208, 15–19. 10.1111/j.1574-6968.2002.tb11053.x [DOI] [PubMed] [Google Scholar]
  8. Coenye T., Liu L., Vandamme P., LiPuma J. J. (2001). Identification of Pandoraea species by 16S ribosomal DNA-based PCR assays. J. Clin. Microbiol. 39, 4452–4455. 10.1128/JCM.39.12.4452-4455.2001 [DOI] [PMC free article] [PubMed] [Google Scholar]
  9. Costello A., Herbert G., Fabunmi L., Schaffer K., Kavanagh K. A., Caraher E. M., et al. (2011). Virulence of an emerging respiratory pathogen, genus Pandoraea, in vivo and its interactions with lung epithelial cells. J. Med. Microbiol. 60, 289–299. 10.1099/jmm.0.022657-0 [DOI] [PubMed] [Google Scholar]
  10. Cuccui J., Easton A., Chu K. K., Bancroft G. J., Oyston P. C., Titball R. W., et al. (2007). Development of signature-tagged mutagenesis in Burkholderia pseudomallei to identify genes important in survival and pathogenesis. Infect. Immun. 75, 1186–1195. 10.1128/IAI.01240-06 [DOI] [PMC free article] [PubMed] [Google Scholar]
  11. Daneshvar M. I., Hollis D. G., Steigerwalt A. G., Whitney A. M., Spangler L., Douglas M. P., et al. (2001). Assignment of CDC weak oxidizer group 2 (WO-2) to the genus Pandoraea and characterization of three new Pandoraea genomospecies. J. Clin. Microbiol. 39, 1819–1826. 10.1128/JCM.39.5.1819-1826.2001 [DOI] [PMC free article] [PubMed] [Google Scholar]
  12. Dons L., Eriksson E., Jin Y., Rottenberg M. E., Kristensson K., Larsen C. N., et al. (2004). Role of flagellin and the two-component CheA/CheY system of Listeria monocytogenes in host cell invasion and virulence. Infect. Immun. 72, 3237–3244. 10.1128/IAI.72.6.3237-3244.2004 [DOI] [PMC free article] [PubMed] [Google Scholar]
  13. Han-Jen R. E., Wai-Fong Y., Kok-Gan C. (2013). Pandoraea sp. RB-44, a novel quorum sensing soil bacterium. Sensors 13, 14121–14132. 10.3390/s131014121 [DOI] [PMC free article] [PubMed] [Google Scholar]
  14. Kanehisa M., Sato Y., Kawashima M., Furumichi M., Tanabe M. (2015). KEGG as a reference resource for gene and protein annotation. Nucleic Acids Res. 44, D457–D462. 10.1093/nar/gkv1070 [DOI] [PMC free article] [PubMed] [Google Scholar]
  15. Krumsiek J., Arnold R., Rattei T. (2007). Gepard: a rapid and sensitive tool for creating dotplots on genome scale. Bioinformatics 23, 1026–1028. 10.1093/bioinformatics/btm039 [DOI] [PubMed] [Google Scholar]
  16. Markowitz V. M., Mavromatis K., Ivanova N. N., Chen I. M., Chu K., Kyrpides N. C. (2009). IMG ER: a system for microbial genome annotation expert review and curation. Bioinformatics 25, 2271–2278. 10.1093/bioinformatics/btp393 [DOI] [PubMed] [Google Scholar]
  17. Morita Y., Tomida J., Kawamura Y. (2012). MexXY multidrug efflux system of Pseudomonas aeruginosa. Front. Microbiol. 3:408. 10.3389/fmicb.2012.00408 [DOI] [PMC free article] [PubMed] [Google Scholar]
  18. Morita Y., Tomida J., Kawamura Y. (2014). Responses of Pseudomonas aeruginosa to antimicrobials. Front. Microbiol. 4:422. 10.3389/fmicb.2013.00422 [DOI] [PMC free article] [PubMed] [Google Scholar]
  19. Morita Y., Tomida J., Kawamura Y. (2015). Efflux-mediated fluoroquinolone resistance in the multidrug-resistant Pseudomonas aeruginosa clinical isolate PA7: identification of a novel MexS variant involved in upregulation of the mexEF-oprN multidrug efflux operon. Front. Microbiol. 6:8. 10.3389/fmicb.2015.00008 [DOI] [PMC free article] [PubMed] [Google Scholar]
  20. Okusu H., Ma D., Nikaido H. (1996). AcrAB efflux pump plays a major role in the antibiotic resistance phenotype of Escherichia coli multiple-antibiotic-resistance (Mar) mutants. J. Bacteriol. 178, 306–308. [DOI] [PMC free article] [PubMed] [Google Scholar]
  21. Piddock L. J. V. (2006). Clinically relevant chromosomally encoded multidrug resistance efflux pumps in bacteria. Clin. Microbiol. Rev. 19, 382–402. 10.1128/CMR.19.2.382-402.2006 [DOI] [PMC free article] [PubMed] [Google Scholar]
  22. Pilatz S., Breitbach K., Hein N., Fehlhaber B., Schulze J., Brenneke B., et al. (2006). Identification of Burkholderia pseudomallei genes required for the intracellular life cycle and in vivo virulence. Infect. Immun. 74, 3576–3586. 10.1128/IAI.01262-05 [DOI] [PMC free article] [PubMed] [Google Scholar]
  23. Podnecky N. L., Rhodes K. A., Schweizer H. P. (2015). Efflux pump-mediated drug resistance in Burkholderia. Front. Microbiol. 6:305 10.3389/fmicb.2015.00305 [DOI] [PMC free article] [PubMed] [Google Scholar]
  24. Poirel L., Cattoir V., Nordmann P. (2012). Plasmid-mediated quinolone resistance; interactions between human, animal, and environmental ecologies. Front. Microbiol. 3:24. 10.3389/fmicb.2012.00024 [DOI] [PMC free article] [PubMed] [Google Scholar]
  25. Poole K. (2011). Pseudomonas aeruginosa: resistance to the max. Front. Microbiol. 2:65. 10.3389/fmicb.2011.00065 [DOI] [PMC free article] [PubMed] [Google Scholar]
  26. Sahin N., Tani A., Kotan R., Sedlacek I., Kimbara K., Tamer A. U. (2011). Pandoraea oxalativorans sp. nov., Pandoraea faecigallinarum sp. nov. and Pandoraea vervacti sp. nov., isolated from oxalate-enriched culture. Int. J. Syst. Evol. Microbiol. 61, 2247–2253. 10.1099/ijs.0.026138-0 [DOI] [PubMed] [Google Scholar]
  27. Schneider I., Queenan A. M., Bauernfeind A. (2006). Novel carbapenem-hydrolyzing oxacillinase OXA-62 from Pandoraea pnomenusa. Antimicrob. Agents Chemother. 50, 1330–1335. 10.1128/AAC.50.4.1330-1335.2006 [DOI] [PMC free article] [PubMed] [Google Scholar]
  28. Seemann T. (2014). Prokka: rapid prokaryotic genome annotation. Bioinformatics 30, 2068–2069. 10.1093/bioinformatics/btu153 [DOI] [PubMed] [Google Scholar]
  29. Segonds C., Paute S., Chabanon G. (2003). Use of amplified ribosomal DNA restriction analysis for identification of Ralstonia and Pandoraea species: interest in determination of the respiratory bacterial flora in patients with cystic fibrosis. J. Clin. Microbiol. 41, 3415–3418. 10.1128/JCM.41.7.3415-3418.2003 [DOI] [PMC free article] [PubMed] [Google Scholar]
  30. Sharma A. K., Payne S. M. (2006). Induction of expression of hfq by DksA is essential for Shigella flexneri virulence. Mol. Microbiol. 62, 469–479. 10.1111/j.1365-2958.2006.05376.x [DOI] [PubMed] [Google Scholar]
  31. Sheehan B. J., Bossé J. T., Beddek A. J., Rycroft A. N., Kroll J. S., Langford P. R. (2003). Identification of Actinobacillus pleuropneumoniae genes important for survival during infection in its natural host. Infect. Immun. 71, 3960–3970. 10.1128/IAI.71.7.3960-3970.2003 [DOI] [PMC free article] [PubMed] [Google Scholar]
  32. Srilunchang T., Proungvitaya T., Wongratanacheewin S., Strugnell R., Homchampa P. (2009). Construction and characterization of an unmarked aroC deletion mutant of Burkholderia pseudomallei strain A2. Southeast Asian J. Trop. Med. Public Health 40, 123–130. [PubMed] [Google Scholar]
  33. Stryjewski M. E., LiPuma J. J., Messier R. H., Jr., Reller L. B., Alexander B. D. (2003). Sepsis, multiple organ failure, and death due to Pandoraea pnomenusa infection after lung transplantation. J. Clin. Microbiol. 41, 2255–2257. 10.1128/JCM.41.5.2255-2257.2003 [DOI] [PMC free article] [PubMed] [Google Scholar]
  34. Sun Y. H., Bakshi S., Chalmers R., Tang C. M. (2000). Functional genomics of Neisseria meningitidis pathogenesis. Nat. Med. 6, 1269–1273. 10.1038/81380 [DOI] [PubMed] [Google Scholar]
  35. Thongboonkerd V., Vanaporn M., Songtawee N., Kanlaya R., Sinchaikul S., Chen S. T., et al. (2007). Altered proteome in Burkholderia pseudomallei rpoE operon knockout mutant: insights into mechanisms of rpoE operon in stress tolerance, survival, and virulence. J. Proteome Res. 6, 1334–1341. 10.1021/pr060457t [DOI] [PubMed] [Google Scholar]
  36. Wattam A. R., Abraham D., Dalay O., Disz T. L., Driscoll T., Gabbard J. L., et al. (2014). PATRIC, the bacterial bioinformatics database and analysis resource. Nucleic Acids Res. 42, D581–D591. 10.1093/nar/gkt1099 [DOI] [PMC free article] [PubMed] [Google Scholar]
  37. Weatherspoon-Griffin N., Yang D., Kong W., Hua Z., Shi Y. (2014). The CpxR/CpxA two-component regulatory system up-regulates the multidrug resistance cascade to facilitate Escherichia coli resistance to a model antimicrobial peptide. J. Biol. Chem. 289, 32571–32582. 10.1074/jbc.M114.565762 [DOI] [PMC free article] [PubMed] [Google Scholar]

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