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393 related items for PubMed ID: 30542069
21. Purified CDT toxins and a clean deletion within the CDT locus provide novel insights into the contribution of binary toxin in cellular inflammation and Clostridioides difficile infection. Nabukhotna K, Kordus SL, Shupe JA, Cano Rodríguez R, Smith A, Bohannon JK, Washington MK, Lacy DB. PLoS Pathog; 2024 Sep; 20(9):e1012568. PubMed ID: 39298531 [Abstract] [Full Text] [Related]
22. Defining the Roles of TcdA and TcdB in Localized Gastrointestinal Disease, Systemic Organ Damage, and the Host Response during Clostridium difficile Infections. Carter GP, Chakravorty A, Pham Nguyen TA, Mileto S, Schreiber F, Li L, Howarth P, Clare S, Cunningham B, Sambol SP, Cheknis A, Figueroa I, Johnson S, Gerding D, Rood JI, Dougan G, Lawley TD, Lyras D. mBio; 2015 Jun 02; 6(3):e00551. PubMed ID: 26037121 [Abstract] [Full Text] [Related]
24. Association between Clostridioides difficile ribotypes, restriction endonuclease analysis types, and toxin gene expression. Watanabe H, Koizumi Y, Matsumoto A, Asai N, Yamagishi Y, Mikamo H. Anaerobe; 2018 Dec 02; 54():140-143. PubMed ID: 30201540 [Abstract] [Full Text] [Related]
25. Strain-Dependent RstA Regulation of Clostridioides difficile Toxin Production and Sporulation. Edwards AN, Krall EG, McBride SM. J Bacteriol; 2020 Jan 02; 202(2):. PubMed ID: 31659010 [Abstract] [Full Text] [Related]
30. Clostridium difficile virulence factors: Insights into an anaerobic spore-forming pathogen. Awad MM, Johanesen PA, Carter GP, Rose E, Lyras D. Gut Microbes; 2014 Dec 08; 5(5):579-93. PubMed ID: 25483328 [Abstract] [Full Text] [Related]
32. New multiplex PCR method for the detection of Clostridium difficile toxin A (tcdA) and toxin B (tcdB) and the binary toxin (cdtA/cdtB) genes applied to a Danish strain collection. Persson S, Torpdahl M, Olsen KE. Clin Microbiol Infect; 2008 Nov 08; 14(11):1057-64. PubMed ID: 19040478 [Abstract] [Full Text] [Related]
33. A MLST Clade 2 Clostridium difficile strain with a variant TcdB induces severe inflammatory and oxidative response associated with mucosal disruption. Costa CL, López-Ureña D, de Oliveira Assis T, Ribeiro RA, Silva RO, Rupnik M, Wilcox MH, de Carvalho AF, do Carmo AO, Dias AA, de Carvalho CB, Chaves-Olarte E, Rodríguez C, Quesada-Gómez C, de Castro Brito GA. Anaerobe; 2016 Aug 08; 40():76-84. PubMed ID: 27311833 [Abstract] [Full Text] [Related]
34. Binary Clostridium difficile toxin (CDT) - A virulence factor disturbing the cytoskeleton. Aktories K, Papatheodorou P, Schwan C. Anaerobe; 2018 Oct 08; 53():21-29. PubMed ID: 29524654 [Abstract] [Full Text] [Related]
36. Effect of tcdR Mutation on Sporulation in the Epidemic Clostridium difficile Strain R20291. Girinathan BP, Monot M, Boyle D, McAllister KN, Sorg JA, Dupuy B, Govind R. mSphere; 2017 Oct 08; 2(1):. PubMed ID: 28217744 [Abstract] [Full Text] [Related]
37. Protection against Clostridioides difficile disease by a naturally avirulent C. difficile strain. Dong Q, Harper S, McSpadden E, Son SS, Allen MM, Lin H, Smith RC, Metcalfe C, Burgo V, Woodson C, Sundararajan A, Rose A, McMillin M, Moran D, Little J, Mullowney M, Sidebottom AM, Shen A, Fortier LC, Pamer EG. bioRxiv; 2024 May 07. PubMed ID: 38766138 [Abstract] [Full Text] [Related]
38. A retrospective study of community-acquired Clostridium difficile infection in southwest China. Liao F, Li W, Gu W, Zhang W, Liu X, Fu X, Xu W, Wu Y, Lu J. Sci Rep; 2018 Mar 05; 8(1):3992. PubMed ID: 29507300 [Abstract] [Full Text] [Related]
39. New ribotype Clostridioides difficile from ST11 group revealed higher pathogenic ability than RT078. Gu W, Wang W, Li W, Li N, Wang Y, Zhang W, Lu C, Tong P, Han Y, Sun X, Lu J, Wu Y, Dai J. Emerg Microbes Infect; 2021 Dec 05; 10(1):687-699. PubMed ID: 33682630 [Abstract] [Full Text] [Related]
40. Molecular analysis of Clostridium difficile isolates recovered from horses with diarrhea. Arroyo LG, Staempfli H, Weese JS. Vet Microbiol; 2007 Feb 25; 120(1-2):179-83. PubMed ID: 17112686 [Abstract] [Full Text] [Related] Page: [Previous] [Next] [New Search]