Whole genome sequence of the Treponema pallidum subsp. endemicum strain Bosnia A: the genome is related to yaws treponemes but contains few loci similar to syphilis treponemes
Jazyk angličtina Země Spojené státy americké Médium electronic-ecollection
Typ dokumentu srovnávací studie, časopisecké články, práce podpořená grantem
PubMed
25375929
PubMed Central
PMC4222731
DOI
10.1371/journal.pntd.0003261
PII: PNTD-D-14-00899
Knihovny.cz E-zdroje
- MeSH
- druhová specificita MeSH
- frambézie mikrobiologie MeSH
- genom bakteriální genetika MeSH
- lidé MeSH
- molekulární sekvence - údaje MeSH
- přenos genů horizontální MeSH
- sekvence nukleotidů MeSH
- sekvenční analýza DNA MeSH
- sekvenční seřazení MeSH
- shluková analýza MeSH
- syfilis mikrobiologie MeSH
- syntenie MeSH
- Treponema pallidum klasifikace genetika MeSH
- Check Tag
- lidé MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- srovnávací studie MeSH
- Geografické názvy
- Bosna a Hercegovina MeSH
BACKGROUND: T. pallidum subsp. endemicum (TEN) is the causative agent of bejel (also known as endemic syphilis). Clinical symptoms of syphilis and bejel are overlapping and the epidemiological context is important for correct diagnosis of both diseases. In contrast to syphilis, caused by T. pallidum subsp. pallidum (TPA), TEN infections are usually spread by direct contact or contaminated utensils rather than by sexual contact. Bejel is most often seen in western Africa and in the Middle East. The strain Bosnia A was isolated in 1950 in Bosnia, southern Europe. METHODOLOGY/PRINCIPAL FINDINGS: The complete genome of the Bosnia A strain was amplified and sequenced using the pooled segment genome sequencing (PSGS) method and a combination of three next-generation sequencing techniques (SOLiD, Roche 454, and Illumina). Using this approach, a total combined average genome coverage of 513× was achieved. The size of the Bosnia A genome was found to be 1,137,653 bp, i.e. 1.6-2.8 kbp shorter than any previously published genomes of uncultivable pathogenic treponemes. Conserved gene synteny was found in the Bosnia A genome compared to other sequenced syphilis and yaws treponemes. The TEN Bosnia A genome was distinct but very similar to the genome of yaws-causing T. pallidum subsp. pertenue (TPE) strains. Interestingly, the TEN Bosnia A genome was found to contain several sequences, which so far, have been uniquely identified only in syphilis treponemes. CONCLUSIONS/SIGNIFICANCE: The genome of TEN Bosnia A contains several sequences thought to be unique to TPA strains; these sequences very likely represent remnants of recombination events during the evolution of TEN treponemes. This finding emphasizes a possible role of repeated horizontal gene transfer between treponemal subspecies in shaping the Bosnia A genome.
Department of Biology Faculty of Medicine Masaryk University Brno Czech Republic
Department of Medicine University of Washington Seattle Washington United States of America
Public Health Service GGD Amsterdam Amsterdam The Netherlands
Zobrazit více v PubMed
Perine PL, Hopkins DR, Niemel PLA, St. John RK, Causse G, et al.. (1984) Handbook of endemic treponematoses: yaws, endemic syphilis, and pinta. Geneva: World Health Organization.
Mitjà O, Šmajs D, Bassat Q (2013) Advances in the diagnosis of endemic treponematoses: yaws, bejel, and pinta. PLoS Negl Trop Dis 7: e2283. PubMed PMC
Mulligan CJ, Norris SJ, Lukehart SA (2008) Molecular studies in PubMed PMC
Giacani L, Lukehart SA (2014) The endemic treponematoses. Clin Microbiol Rev 27: 89–115. PubMed PMC
Engelkens HJ, Oranje AP, Stolz E (1989) Early yaws, imported in The Netherlands. Genitourin Med 65: 316–318. PubMed PMC
Fanella S, Kadkhoda K, Shuel M, Tsang R (2012) Local transmission of imported endemic syphilis, Canada, 2011. Emerg Infect Dis 18: 1002–1004. PubMed PMC
Lipozenčić J, Marinović B, Gruber F (2014) Endemic syphilis in Europe. Clin Dermatol 32: 219–226. PubMed
Pospíšil L (1975) Morbus Brunogallicus. Cesk Dermatol 50: 345–348. PubMed
Turner TB, Hollander DH (1957) Biology of the treponematoses based on studies carried out at the International Treponematosis Laboratory Center of the Johns Hopkins University under the auspices of the World Health Organization. Monogr Ser World Health Organ 35: 3–266. PubMed
Giacani L, Jeffrey BM, Molini BJ, Le HT, Lukehart SA, et al. (2010) Complete genome sequence and annotation of the PubMed PMC
Čejková D, Zobaníková M, Chen L, Pospíšilová P, Strouhal M, et al. (2012) Whole genome sequences of three PubMed PMC
Pětrošová H, Zobaníková M, Čejková D, Mikalová L, Pospíšilová P, et al. (2012) Whole genome sequence of PubMed PMC
Zobaníková M, Mikolka P, Čejková D, Pospíšilová P, Chen L, et al. (2012) Complete genome sequence of PubMed PMC
Pětrošová H, Pospíšilová P, Strouhal M, Čejková D, Zobaníková M, et al. (2013) Resequencing of PubMed PMC
Zobaníková M, Strouhal M, Mikalová L, Čejková D, Ambrožová L, et al. (2013) Whole genome sequence of the PubMed PMC
Fraser CM, Norris SJ, Weinstock GM, White O, Sutton GG, et al. (1998) Complete genome sequence of PubMed
Chen K, Chen L, Fan X, Wallis J, Ding L, et al. (2014) TIGRA: A targeted iterative graph routing assembler for breakpoint assembly. Genome Res 24: 310–317. PubMed PMC
Strouhal M, Šmajs D, Matějková P, Sodergren E, Amin AG, et al. (2007) Genome differences between PubMed PMC
Mikalová L, Strouhal M, Čejková D, Zobaníková M, Pospíšilová P, et al. (2010) Genome analysis of PubMed PMC
Kearse M, Moir R, Wilson A, Stones-Havas S, Cheung M, et al. (2012) Geneious basic: an integrated and extendable desktop software platform for the organization and analysis of sequence data. Bioinformatics 28: 1647–1649. PubMed PMC
Finn RD, Bateman A, Clements J, Coggill P, Eberhardt RY, et al. (2014) Pfam: the protein families database. Nucleic Acids Res 42 Database issue: D222–30. PubMed PMC
Marchler-Bauer A, Lu S, Anderson JB, Chitsaz F, Derbyshire MK, et al. (2011) CDD: a Conserved Domain Database for the functional annotation of proteins. Nucleic Acids Res 39 Database issue: D225–229. PubMed PMC
Kanehisa M, Goto S, Sato Y, Kawashima M, Furumichi M, et al. (2014) Data, information, knowledge and principle: back to metabolism in KEGG. Nucleic Acids Res 42 Database issue: D199–205. PubMed PMC
Librado P, Rozas J (2009) DnaSP v5: a software for comprehensive analysis of DNA polymorphism data. Bioinformatics 25: 1451–1452. PubMed
Tamura K, Peterson D, Peterson N, Stecher G, Nei M, et al. (2011) MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Mol Biol Evol 28: 2731–2739. PubMed PMC
Martin DP, Lemey P, Lott M, Moulton V, Posada D, et al. (2010) RDP3: a flexible and fast computer program for analyzing recombination. Bioinformatics 26: 2462–2463. PubMed PMC
Centurion-Lara A, Giacani L, Godornes C, Molini BJ, Brinck Reid T, et al. (2013) Fine analysis of genetic diversity of the PubMed PMC
Brinkman MB, McGill MA, Pettersson J, Rogers A, Matějková P, et al. (2008) A novel PubMed PMC
Harper KN, Ocampo PS, Steiner BM, George RW, Silverman MS, et al. (2008) On the origin of the treponematoses: a phylogenetic approach. PLoS Negl Trop Dis 2: e148. PubMed PMC
Šmajs D, Zobaníková M, Strouhal M, Čejková D, Dugan-Rocha S, et al. (2011) Complete genome sequence of PubMed PMC
Lumeij JT, Mikalová L, Šmajs D (2013) Is there a difference between hare syphilis and rabbit syphilis? Cross infection experiments between rabbits and hares. Vet Microbiol 164: 190–194. PubMed
Antal GM, Lukehart SA, Meheus AZ (2002) The endemic treponematoses. Microbes Infect 4: 83–94. PubMed
Cameron CE, Castro C, Lukehart SA, Van Voorhis WC (1999) Sequence conservation of glycerophosphodiester phosphodiesterase among PubMed PMC
Giacani L, Brandt SL, Puray-Chavez M, Reid TB, Godornes C, et al. (2012) Comparative investigation of the genomic regions involved in antigenic variation of the TprK antigen among treponemal species, subspecies, and strains. J Bacteriol 194: 4208–4225. PubMed PMC
Čejková D, Zobaníková M, Pospíšilová P, Strouhal M, Mikalová L, et al. (2013) Structure of PubMed PMC
Nechvátal L, Pětrošová H, Grillová L, Pospíšilová P, Mikalová L, et al. (2014) Syphilis-causing strains belong to separate SS14-like or Nichols-like groups as defined by multilocus analysis of 19 PubMed
Giacani L, Molini B, Godornes C, Barrett L, Van Voorhis W, et al. (2007) Quantitative analysis of PubMed PMC
Centurion-Lara A, Castro C, Barrett L, Cameron C, Mostowfi M, et al. (1999) PubMed PMC
Centurion-Lara A, Godornes C, Castro C, Van Voorhis WC, Lukehart SA (2000) The PubMed PMC
Centurion-Lara A, Sun ES, Barrett LK, Castro C, Lukehart SA, et al. (2000) Multiple alleles of PubMed PMC
Bernstein DA, Keck JL (2003) Domain mapping of PubMed PMC
Harper KN, Liu H, Ocampo PS, Steiner BM, Martin A, et al. (2008) The sequence of the acidic repeat protein ( PubMed
Giacani L, Denisenko O, Tompa M, Centurion-Lara A (2013) Identification of the PubMed PMC
Flasarová M, Pospíšilová P, Mikalová L, Vališová Z, Dastychová E, et al. (2012) Sequencing-based molecular typing of PubMed
The hare syphilis agent is related to, but distinct from, the treponeme causing rabbit syphilis
Evolutionary Processes in the Emergence and Recent Spread of the Syphilis Agent, Treponema pallidum
Treponema pallidum, the syphilis spirochete: making a living as a stealth pathogen
GENBANK
CP007548