Members of native coral microbiota inhibit glycosidases and thwart colonization of coral mucus by an opportunistic pathogen

ISME J. 2013 May;7(5):980-90. doi: 10.1038/ismej.2012.164. Epub 2012 Dec 20.

Abstract

The outcome of the interactions between native commensal microorganisms and opportunistic pathogens is crucial to the health of the coral holobiont. During the establishment within the coral surface mucus layer, opportunistic pathogens, including a white pox pathogen Serratia marcescens PDL100, compete with native bacteria for available nutrients. Both commensals and pathogens employ glycosidases and N-acetyl-glucosaminidase to utilize components of coral mucus. This study tested the hypothesis that specific glycosidases were critical for the growth of S. marcescens on mucus and that their inhibition by native coral microbiota reduces fitness of the pathogen. Consistent with this hypothesis, a S. marcescens transposon mutant with reduced glycosidase and N-acetyl-glucosaminidase activities was unable to compete with the wild type on the mucus of the host coral Acropora palmata, although it was at least as competitive as the wild type on a minimal medium with glycerol and casamino acids. Virulence of the mutant was modestly reduced in the Aiptasia model. A survey revealed that ∼8% of culturable coral commensal bacteria have the ability to inhibit glycosidases in the pathogen. A small molecular weight, ethanol-soluble substance(s) produced by the coral commensal Exiguobacterium sp. was capable of the inhibition of the induction of catabolic enzymes in S. marcescens. This inhibition was in part responsible for the 10-100-fold reduction in the ability of the pathogen to grow on coral mucus. These results provide insight into potential mechanisms of commensal interference with early colonization and infection behaviors in opportunistic pathogens and highlight an important function for the native microbiota in coral health.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Acetylglucosaminidase / metabolism
  • Animals
  • Anthozoa / microbiology*
  • Anthozoa / physiology
  • Antibiosis*
  • Bacillales / growth & development
  • Bacillales / metabolism*
  • Glycoside Hydrolases / metabolism
  • Sea Anemones / microbiology
  • Serratia marcescens / genetics
  • Serratia marcescens / growth & development*
  • Serratia marcescens / metabolism
  • Serratia marcescens / pathogenicity
  • Symbiosis
  • Virulence

Substances

  • Glycoside Hydrolases
  • Acetylglucosaminidase