4.6 Article

Pseudomonas aeruginosa glutathione biosynthesis genes play multiple roles in stress protection, bacterial virulence and biofilm formation

期刊

PLOS ONE
卷 13, 期 10, 页码 -

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PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.pone.0205815

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资金

  1. Chulabhorn Research Institute
  2. Mahidol University
  3. Royal Golden Jubilee Ph.D. Scholarship from Thailand Research Fund [PHD/0132/2557, PHD/0047/2557]
  4. Center for Emerging Bacterial Infections (EBI)
  5. Central Instrument Facility (CIF grant) of Faculty of Science, the Mahidol University
  6. Office of the Higher Education Commission [MRG5980047]
  7. Thailand Research Fund, Thailand [MRG5980047]

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Pseudomonas aeruginosa PAO1 contains gshA and gshB genes, which encode enzymes involved in glutathione (GSH) biosynthesis. Challenging P. aeruginosa with hydrogen peroxide, cumene hydroperoxide, and t-butyl hydroperoxide increased the expression of gshA and gshB. The physiological roles of these genes in P. aeruginosa oxidative stress, bacterial virulence, and biofilm formation were examined using P. aeruginosa Delta gshA, Delta gshB, and double Delta gshA Delta gshB mutant strains. These mutants exhibited significantly increased susceptibility to methyl viologen, thiol-depleting agent, and methylglyoxal compared to PAO1. Expression of functional gshA, gshB or exogenous supplementation with GSH complemented these phenotypes, which indicates that the observed mutant phenotypes arose from their inability to produce GSH. Virulence assays using a Drosophila melanogaster model revealed that the Delta gshA, Delta gshB and double Delta gshA Delta gshB mutants exhibited attenuated virulence phenotypes. An analysis of virulence factors, including pyocyanin, pyoverdine, and cell motility (swimming and twitching), showed that these levels were reduced in these gsh mutants compared to PAO1. In contrast, biofilm formation increased in mutants. These data indicate that the GSH product and the genes responsible for GSH synthesis play multiple crucial roles in oxidative stress protection, bacterial virulence and biofilm formation in P. aeruginosa.

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