Literature DB >> 31406348

Adaptation of host transmission cycle during Clostridium difficile speciation.

Nitin Kumar1, Hilary P Browne2, Elisa Viciani2, Samuel C Forster2,3,4, Simon Clare5, Katherine Harcourt5, Mark D Stares2, Gordon Dougan5, Derek J Fairley6, Paul Roberts7, Munir Pirmohamed7, Martha R J Clokie8, Mie Birgitte Frid Jensen9, Katherine R Hargreaves8, Margaret Ip10, Lothar H Wieler11,12, Christian Seyboldt13, Torbjörn Norén14,15, Thomas V Riley16,17, Ed J Kuijper18, Brendan W Wren19, Trevor D Lawley20.   

Abstract

Bacterial speciation is a fundamental evolutionary process characterized by diverging genotypic and phenotypic properties. However, the selective forces that affect genetic adaptations and how they relate to the biological changes that underpin the formation of a new bacterial species remain poorly understood. Here, we show that the spore-forming, healthcare-associated enteropathogen Clostridium difficile is actively undergoing speciation. Through large-scale genomic analysis of 906 strains, we demonstrate that the ongoing speciation process is linked to positive selection on core genes in the newly forming species that are involved in sporulation and the metabolism of simple dietary sugars. Functional validation shows that the new C. difficile produces spores that are more resistant and have increased sporulation and host colonization capacity when glucose or fructose is available for metabolism. Thus, we report the formation of an emerging C. difficile species, selected for metabolizing simple dietary sugars and producing high levels of resistant spores, that is adapted for healthcare-mediated transmission.

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Year:  2019        PMID: 31406348     DOI: 10.1038/s41588-019-0478-8

Source DB:  PubMed          Journal:  Nat Genet        ISSN: 1061-4036            Impact factor:   38.330


  3 in total

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Journal:  Int J Syst Evol Microbiol       Date:  2002-11       Impact factor: 2.747

  3 in total
  21 in total

Review 1.  Molecular Hydrogen Metabolism: a Widespread Trait of Pathogenic Bacteria and Protists.

Authors:  Stéphane L Benoit; Chris Greening; Robert J Maier; R Gary Sawers
Journal:  Microbiol Mol Biol Rev       Date:  2020-01-29       Impact factor: 11.056

2.  Diverse Energy-Conserving Pathways in Clostridium difficile: Growth in the Absence of Amino Acid Stickland Acceptors and the Role of the Wood-Ljungdahl Pathway.

Authors:  Simonida Gencic; David A Grahame
Journal:  J Bacteriol       Date:  2020-09-23       Impact factor: 3.490

3.  Global Landscape of Clostridioides Difficile Phylogeography, Antibiotic Susceptibility, and Toxin Polymorphisms by Post-Hoc Whole-Genome Sequencing from the MODIFY I/II Studies.

Authors:  Hailong Zhao; David C Nickle; Zhen Zeng; Pierra Y T Law; Mark H Wilcox; Lan Chen; Ye Peng; Jie Meng; Ziqing Deng; Andrew Albright; Huanzi Zhong; Xun Xu; Shida Zhu; Judong Shen; Rebecca L Blanchard; Mary Beth Dorr; Peter M Shaw; Junhua Li
Journal:  Infect Dis Ther       Date:  2021-03-22

4.  C. difficile exploits a host metabolite produced during toxin-mediated disease.

Authors:  Kali M Pruss; Justin L Sonnenburg
Journal:  Nature       Date:  2021-04-28       Impact factor: 69.504

5.  Global population structure of the Serratia marcescens complex and identification of hospital-adapted lineages in the complex.

Authors:  Tomoyuki Ono; Itsuki Taniguchi; Keiji Nakamura; Debora Satie Nagano; Ruriko Nishida; Yasuhiro Gotoh; Yoshitoshi Ogura; Mitsuhiko P Sato; Atsushi Iguchi; Kazunori Murase; Dai Yoshimura; Takehiko Itoh; Ayaka Shima; Damien Dubois; Eric Oswald; Akira Shiose; Naomasa Gotoh; Tetsuya Hayashi
Journal:  Microb Genom       Date:  2022-03

6.  Subtyping analysis reveals new variants and accelerated evolution of Clostridioides difficile toxin B.

Authors:  Enhui Shen; Kangli Zhu; Danyang Li; Zhenrui Pan; Yun Luo; Qiao Bian; Liuqing He; Xiaojun Song; Ying Zhen; Dazhi Jin; Liang Tao
Journal:  Commun Biol       Date:  2020-07-03

7.  Genomic evolution and virulence association of Clostridioides difficile sequence type 37 (ribotype 017) in China.

Authors:  Xingxing Xu; Yuo Luo; Huan Chen; Xiaojun Song; Qiao Bian; Xianjun Wang; Qian Liang; Jianhong Zhao; Chunhui Li; Guangzhong Song; Jun Yang; Lingli Sun; Jianmin Jiang; Huanying Wang; Bo Zhu; Guangyong Ye; Liang Chen; Yi-Wei Tang; Dazhi Jin
Journal:  Emerg Microbes Infect       Date:  2021-12       Impact factor: 7.163

8.  Reduced Clostridioides difficile infection in a pragmatic stepped-wedge initiative using admission surveillance to detect colonization.

Authors:  Lance R Peterson; Sean O'Grady; Mary Keegan; Adrienne Fisher; Shane Zelencik; Bridget Kufner; Mona Shah; Rachel Lim; Donna Schora; Sanchita Das; Kamaljit Singh
Journal:  PLoS One       Date:  2020-03-19       Impact factor: 3.240

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Authors:  H A Shaw; M D Preston; K E W Vendrik; M D Cairns; H P Browne; R A Stabler; M J T Crobach; J Corver; H Pituch; A Ingebretsen; M Pirmohamed; A Faulds-Pain; E Valiente; T D Lawley; N F Fairweather; E J Kuijper; B W Wren
Journal:  Clin Microbiol Infect       Date:  2019-09-13       Impact factor: 8.067

10.  A High-Fat/High-Protein, Atkins-Type Diet Exacerbates Clostridioides (Clostridium) difficile Infection in Mice, whereas a High-Carbohydrate Diet Protects.

Authors:  Chrisabelle C Mefferd; Shrikant S Bhute; Jacqueline R Phan; Jacob V Villarama; Dung M Do; Stephanie Alarcia; Ernesto Abel-Santos; Brian P Hedlund
Journal:  mSystems       Date:  2020-02-11       Impact factor: 6.496

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