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Pheromone killing of multidrug-resistantEnterococcus faecalisV583 by native commensal strains
by
Varahan, Sriram
, Hancock, Lynn Ernest
, Manson, Janet M.
, Ramsey, Matthew M.
, Gilmore, Michael S.
, Lebreton, Francois
, Himes, Paul R.
, Rauch, Marcus
2015
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Pheromone killing of multidrug-resistantEnterococcus faecalisV583 by native commensal strains
by
Varahan, Sriram
, Hancock, Lynn Ernest
, Manson, Janet M.
, Ramsey, Matthew M.
, Gilmore, Michael S.
, Lebreton, Francois
, Himes, Paul R.
, Rauch, Marcus
2015
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Pheromone killing of multidrug-resistantEnterococcus faecalisV583 by native commensal strains
Journal Article
Pheromone killing of multidrug-resistantEnterococcus faecalisV583 by native commensal strains
2015
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Overview
Multidrug-resistantEnterococcus faecalispossess numerous mobile elements that encode virulence and antibiotic resistance traits as well as new metabolic pathways, often constituting over one-quarter of the genome. It was of interest to determine how this large accretion of mobile elements affects competitive growth in the gastrointestinal (GI) tract consortium. We unexpectedly observed that the prototype clinical isolate strain V583 was actively killed by GI tract flora, whereas commensal enterococci flourished. It was found that killing of V583 resulted from lethal cross-talk between accumulated mobile elements and that this cross-talk was induced by a heptapeptide pheromone produced by nativeE. faecalispresent in the fecal consortium. These results highlight two important aspects of the evolution of multidrug-resistant enterococci: (i) the accretion of mobile elements inE. faecalisV583 renders it incompatible with commensal strains, and (ii) because of this incompatibility, multidrug-resistant strains sharing features found in V583 cannot coexist with commensal strains. The accumulation of mobile elements in hospital isolates of enterococci can include those that are inherently incompatible with native flora, highlighting the importance of maintaining commensal populations as means of preventing colonization and subsequent infection by multidrug-resistant strains.
Publisher
National Academy of Sciences
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