Dissecting the molecular diversity and commonality of bovine and human treponemes identifies key survival and adhesion mechanisms
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N. Hall | A. Darby | A. Radford | J. Wastling | S. Armstrong | S. Carter | S. Clegg | N. Evans | S. Ainsworth | G. Staton
[1] S. Carter,et al. Challenge of Bovine Foot Skin Fibroblasts With Digital Dermatitis Treponemes Identifies Distinct Pathogenic Mechanisms , 2021, Frontiers in Cellular and Infection Microbiology.
[2] Da Hyeon Choi,et al. Association between the microbiomes of tonsil and saliva samples isolated from pediatric patients subjected to tonsillectomy for the treatment of tonsillar hyperplasia , 2020, Experimental & Molecular Medicine.
[3] R. Smith,et al. Putative β-Barrel Outer Membrane Proteins of the Bovine Digital Dermatitis-Associated Treponemes: Identification, Functional Characterization, and Immunogenicity , 2020, Infection and Immunity.
[4] E. Zheng,et al. Metagenomic Characterization of Intestinal Regions in Pigs With Contrasting Feed Efficiency , 2020, Frontiers in Microbiology.
[5] Yoko Sato,et al. KEGG Mapper for inferring cellular functions from protein sequences , 2019, Protein science : a publication of the Protein Society.
[6] C. Dehio,et al. Role of distinct type‐IV‐secretion systems and secreted effector sets in host adaptation by pathogenic Bartonella species , 2019, Cellular microbiology.
[7] Ronan K. Carroll,et al. The Intracellular Cyclophilin PpiB Contributes to the Virulence of Staphylococcus aureus Independently of Its Peptidyl-Prolyl cis/trans Isomerase Activity , 2018, Infection and Immunity.
[8] I. Goodhead,et al. Evolutionary trade-offs associated with loss of PmrB function in host-adapted Pseudomonas aeruginosa , 2018, Nature Communications.
[9] S. Knauf,et al. Genetics of human and animal uncultivable treponemal pathogens. , 2018, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[10] J. Weese,et al. Evaluation of the impact of dental prophylaxis on the oral microbiota of dogs , 2018, PloS one.
[11] Frank Wien,et al. BeStSel: a web server for accurate protein secondary structure prediction and fold recognition from the circular dichroism spectra , 2018, Nucleic Acids Res..
[12] R. Birtles,et al. Treponema rectale sp. nov., a spirochete isolated from the bovine rectum. , 2017, International journal of systematic and evolutionary microbiology.
[13] R. Birtles,et al. Treponema ruminis sp. nov., a spirochaete isolated from the bovine rumen. , 2017, International journal of systematic and evolutionary microbiology.
[14] T. Sicheritz-Pontén,et al. A novel approach to probe host-pathogen interactions of bovine digital dermatitis, a model of a complex polymicrobial infection , 2016, BMC Genomics.
[15] Arvind Anand,et al. Treponema pallidum, the syphilis spirochete: making a living as a stealth pathogen , 2016, Nature Reviews Microbiology.
[16] C. Hart,et al. Multilocus Sequence Typing of Pathogenic Treponemes Isolated from Cloven-Hoofed Animals and Comparison to Treponemes Isolated from Humans , 2016, Applied and Environmental Microbiology.
[17] R. Watt,et al. In-depth snapshot of the equine subgingival microbiome. , 2016, Microbial pathogenesis.
[18] P. Cock,et al. The genome and genetics of a high oxidative stress tolerant Serratia sp. LCN16 isolated from the plant parasitic nematode Bursaphelenchus xylophilus , 2016, BMC Genomics.
[19] Chitra Dutta,et al. BPGA- an ultra-fast pan-genome analysis pipeline , 2016, Scientific Reports.
[20] Aldert L. Zomer,et al. Campylobacter fetus Subspecies Contain Conserved Type IV Secretion Systems on Multiple Genomic Islands and Plasmids , 2016, PLoS ONE.
[21] Sudhir Kumar,et al. MEGA7: Molecular Evolutionary Genetics Analysis Version 7.0 for Bigger Datasets. , 2016, Molecular biology and evolution.
[22] M. Kanehisa,et al. BlastKOALA and GhostKOALA: KEGG Tools for Functional Characterization of Genome and Metagenome Sequences. , 2016, Journal of molecular biology.
[23] Pavel A Pevzner,et al. TruSPAdes: barcode assembly of TruSeq synthetic long reads , 2016, Nature Methods.
[24] Thomas Nussbaumer,et al. EffectiveDB—updates and novel features for a better annotation of bacterial secreted proteins and Type III, IV, VI secretion systems , 2015, Nucleic Acids Res..
[25] J. Taylor,et al. Conservation of the Host-Interacting Proteins Tp0750 and Pallilysin among Treponemes and Restriction of Proteolytic Capacity to Treponema pallidum , 2015, Infection and Immunity.
[26] D. Döpfer,et al. Altered Microbiomes in Bovine Digital Dermatitis Lesions, and the Gut as a Pathogen Reservoir , 2015, PloS one.
[27] R. Schneider,et al. phoU Inactivation in Pseudomonas aeruginosa Enhances Accumulation of ppGpp and Polyphosphate , 2015, Applied and Environmental Microbiology.
[28] P. Siguier,et al. Bacterial insertion sequences: their genomic impact and diversity , 2014, FEMS microbiology reviews.
[29] R. Zuerner,et al. Biochemical and molecular characterization of Treponema phagedenis-like spirochetes isolated from a bovine digital dermatitis lesion , 2013, BMC Microbiology.
[30] B. Segerman,et al. Genome-Wide Relatedness of Treponema pedis, from Gingiva and Necrotic Skin Lesions of Pigs, with the Human Oral Pathogen Treponema denticola , 2013, PloS one.
[31] M. Boyé,et al. Targeting the Treponemal Microbiome of Digital Dermatitis Infections by High-Resolution Phylogenetic Analyses and Comparison with Fluorescent In Situ Hybridization , 2013, Journal of Clinical Microbiology.
[32] J. P. Cárdenas,et al. Comparative genomics of the oxidative stress response in bioleaching microorganisms , 2012 .
[33] G. Weinstock,et al. Whole Genome Sequence of Treponema pallidum ssp. pallidum, Strain Mexico A, Suggests Recombination between Yaws and Syphilis Strains , 2012, PLoS neglected tropical diseases.
[34] F. Dewhirst,et al. The Canine Oral Microbiome , 2012, PloS one.
[35] C. Hart,et al. Host and environmental reservoirs of infection for bovine digital dermatitis treponemes. , 2012, Veterinary microbiology.
[36] Keith A. Jolley,et al. Ribosomal multilocus sequence typing: universal characterization of bacteria from domain to strain , 2012, Microbiology.
[37] L. Fulton,et al. Whole Genome Sequences of Three Treponema pallidum ssp. pertenue Strains: Yaws and Syphilis Treponemes Differ in Less than 0.2% of the Genome Sequence , 2012, PLoS neglected tropical diseases.
[38] Jun Yu,et al. PGAP: pan-genomes analysis pipeline , 2011, Bioinform..
[39] S. Brunak,et al. SignalP 4.0: discriminating signal peptides from transmembrane regions , 2011, Nature Methods.
[40] G. Weinstock,et al. Complete Genome Sequence of Treponema paraluiscuniculi, Strain Cuniculi A: The Loss of Infectivity to Humans Is Associated with Genome Decay , 2011, PloS one.
[41] M. Danzer,et al. Prevalence of bovine papillomavirus and Treponema DNA in bovine digital dermatitis lesions. , 2011, Veterinary microbiology.
[42] C. Hart,et al. Characterization of Novel Bovine Gastrointestinal Tract Treponema Isolates and Comparison with Bovine Digital Dermatitis Treponemes , 2010, Applied and Environmental Microbiology.
[43] R. Stokes,et al. Mycobacterium tuberculosis employs Cpn60.2 as an adhesin that binds CD43 on the macrophage surface , 2010, Cellular microbiology.
[44] Robert C. Edgar,et al. Search and clustering orders of magnitude faster than BLAST , 2010, Bioinform..
[45] N. Perna,et al. progressiveMauve: Multiple Genome Alignment with Gene Gain, Loss and Rearrangement , 2010, PloS one.
[46] M. Wiedmann,et al. Homopolymeric tracts represent a general regulatory mechanism in prokaryotes , 2010, BMC Genomics.
[47] J. Werren,et al. Characteristics of the genome of Arsenophonus nasoniae, son‐killer bacterium of the wasp Nasonia , 2010, Insect molecular biology.
[48] C. Hart,et al. Treponema pedis sp. nov., a spirochaete isolated from bovine digital dermatitis lesions. , 2009, International journal of systematic and evolutionary microbiology.
[49] M. Mann,et al. Universal sample preparation method for proteome analysis , 2009, Nature Methods.
[50] C. Hart,et al. Association of Unique, Isolated Treponemes with Bovine Digital Dermatitis Lesions , 2009, Journal of Clinical Microbiology.
[51] Dirk Husmeier,et al. TOPALi v2: a rich graphical interface for evolutionary analyses of multiple alignments on HPC clusters and multi-core desktops , 2008, Bioinform..
[52] M. Nordhoff,et al. High prevalence of treponemes in bovine digital dermatitis-a molecular epidemiology. , 2008, Veterinary microbiology.
[53] 影山 亜紀子,et al. 「Bergey's Manual of Systematic Bacteriology 第1版」に記載された分類とその後の分類の異同-グラム陽性菌 , 2008 .
[54] C. Hart,et al. Three unique groups of spirochetes isolated from digital dermatitis lesions in UK cattle. , 2008, Veterinary microbiology.
[55] R. Field,et al. Biosynthesis of a Rare Di-N-Acetylated Sugar in the Lipopolysaccharides of both Pseudomonas aeruginosa and Bordetella pertussis Occurs via an Identical Scheme despite Different Gene Clusters , 2008, Journal of bacteriology.
[56] Tim K. Jensen,et al. Evidence of Multiple Treponema Phylotypes Involved in Bovine Digital Dermatitis as Shown by 16S rRNA Gene Analysis and Fluorescence In Situ Hybridization , 2008, Journal of Clinical Microbiology.
[57] L. Giacani,et al. Length of guanosine homopolymeric repeats modulates promoter activity of subfamily II tpr genes of Treponema pallidum ssp. pallidum. , 2007, FEMS immunology and medical microbiology.
[58] Richard Moxon,et al. Bacterial contingency loci: the role of simple sequence DNA repeats in bacterial adaptation. , 2006, Annual review of genetics.
[59] R. Coppel,et al. Genome reduction in Leptospira borgpetersenii reflects limited transmission potential , 2006, Proceedings of the National Academy of Sciences.
[60] K. Frankena,et al. Herd- and cow-level prevalence of digital dermatitis in the Netherlands and associated risk factors. , 2006, Journal of dairy science.
[61] H. Simianer,et al. Genetic parameters of claw and foot disorders estimated with logistic models. , 2005, Journal of dairy science.
[62] M. Nordhoff,et al. Treponema berlinense sp. nov. and Treponema porcinum sp. nov., novel spirochaetes isolated from porcine faeces. , 2005, International journal of systematic and evolutionary microbiology.
[63] Shandar Ahmad,et al. TMBETA-NET: discrimination and prediction of membrane spanning β-strands in outer membrane proteins , 2005, Nucleic Acids Res..
[64] S. Holt,et al. Porphyromonas gingivalis, Treponema denticola, and Tannerella forsythia: the "red complex", a prototype polybacterial pathogenic consortium in periodontitis. , 2005, Periodontology 2000.
[65] T. Ogawa,et al. Treponema medium Glycoconjugate Inhibits Activation of Human Gingival Fibroblasts Stimulated with Phenol-Water Extracts of Periodontopathic Bacteria , 2005, Journal of dental research.
[66] Ingvar Eidhammer,et al. BOMP: a program to predict integral ?barrel outer membrane proteins encoded within genomes of Gram-negative bacteria , 2004, Nucleic Acids Res..
[67] Stavros J. Hamodrakas,et al. PRED-TMBB: a web server for predicting the topology of ?barrel outer membrane proteins , 2004, Nucleic Acids Res..
[68] D. Haake,et al. Outer membrane proteins of pathogenic spirochetes. , 2004, FEMS microbiology reviews.
[69] G. Weinstock,et al. Comparison of the genome of the oral pathogen Treponema denticola with other spirochete genomes. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[70] Robert C. Edgar,et al. MUSCLE: multiple sequence alignment with high accuracy and high throughput. , 2004, Nucleic acids research.
[71] A. Razavi,et al. M‐2000, as a New Anti‐inflammatory Molecule in Treatment of Experimental Nephrosis , 2004, Immunopharmacology and immunotoxicology.
[72] T. Ogawa,et al. Treponemal glycoconjugate inhibits Toll‐like receptor ligand‐induced cell activation by blocking LPS‐binding protein and CD14 functions , 2003, European journal of immunology.
[73] A. Edwards,et al. Genetic relatedness and phenotypic characteristics of Treponema associated with human periodontal tissues and ruminant foot disease. , 2003, Microbiology.
[74] Anton J. Enright,et al. An efficient algorithm for large-scale detection of protein families. , 2002, Nucleic acids research.
[75] D. Maskell,et al. Multiple Roles for BordetellaLipopolysaccharide Molecules during Respiratory Tract Infection , 2000, Infection and Immunity.
[76] Kim Rutherford,et al. Artemis: sequence visualization and annotation , 2000, Bioinform..
[77] R. Ericson,et al. The diversity of periodontal spirochetes by 16S rRNA analysis. , 2000, Oral microbiology and immunology.
[78] L. Banks,et al. Modulation of type M2 pyruvate kinase activity by the human papillomavirus type 16 E7 oncoprotein. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[79] Paul S. Hoffman,et al. Surface-Associated Hsp60 Chaperonin of Legionella pneumophila Mediates Invasion in a HeLa Cell Model , 1998, Infection and Immunity.
[80] J. Leunissen,et al. Distinct frequency-distributions of homopolymeric DNA tracts in different genomes. , 1998, Nucleic acids research.
[81] S. Salzberg,et al. Complete genome sequence of Treponema pallidum, the syphilis spirochete. , 1998, Science.
[82] F. Dewhirst,et al. Phylogenetic analysis of cultivable oral treponemes from the Smibert collection. , 1998, International journal of systematic bacteriology.
[83] Y. Benno,et al. Characterization of oral treponemes isolated from human periodontal pockets. , 1995, Oral microbiology and immunology.
[84] W. Gaastra,et al. Characterization of three putative Serpulina hyodysenteriae hemolysins. , 1994, Microbial pathogenesis.
[85] H. Masoud,et al. Characterization of lipopolysaccharide-deficient mutants of Pseudomonas aeruginosa derived from serotypes O3, O5, and O6 , 1994, Infection and immunity.
[86] D. D. Thomas,et al. Pathogen-related oral spirochetes from dental plaque are invasive , 1991, Infection and immunity.
[87] E. Myers,et al. Basic local alignment search tool. , 1990, Journal of molecular biology.
[88] T. Stanton,et al. Treponema bryantii sp. nov., a rumen spirochete that interacts with cellulolytic bacteria , 1980, Archives of Microbiology.
[89] J. King,et al. Interdigital papillomatosis in dairy cattle. , 1980, Journal of the American Veterinary Medical Association.
[90] E. Canale-Parola,et al. Treponema succinifaciens sp. nov., an anaerobic spirochete from the swine intestine , 1979, Archives of Microbiology.
[91] P. Hardy,et al. INFLUENCE OF OSMOTIC PRESSURE ON THE MORPHOLOGY OF THE REITER TREPONEME , 1961, Journal of bacteriology.
[92] D. Haake,et al. Spirochetal Lipoproteins in Pathogenesis and Immunity. , 2018, Current topics in microbiology and immunology.
[93] J. Radolf,et al. Pathogenesis of syphilis. , 2006 .
[94] A. R.,et al. Review of literature , 1951, American Potato Journal.
[95] R. B. Hespell,et al. Amino acid and glucose fermentation by Treponema denticola , 2004, Archiv für Mikrobiologie.
[96] S Rozen,et al. Primer3 on the WWW for general users and for biologist programmers. , 2000, Methods in molecular biology.
[97] L. Garber,et al. Papillomatous digital dermatitis and associated risk factors in US dairy herds. , 1999, Preventive veterinary medicine.
[98] F. Nakazawa,et al. Treponema medium sp. nov., isolated from human subgingival dental plaque. , 1997, International journal of systematic bacteriology.
[99] U. Göbel,et al. Spirochetes from digital dermatitis lesions in cattle are closely related to treponemes associated with human periodontitis. , 1997, International journal of systematic bacteriology.
[100] A. Harris,et al. Reiter treponeme. A review of the literature. , 1967, Bulletin of the World Health Organization.
[101] F. Schaudinn,et al. Vorläufiger Bericht über das Vorkommen von Spirochaeten in syphilitischen Krankheitsprodukten und bei Papillomen , 1905 .