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Published on: July 22, 2019
Vibrio fischeri Amidase Activity Is Required for Normal Cell Division, Motility, and Symbiotic Competence
Pat M Fidopiastis1, Vanessa Mariscal2, Jeanne-Marie McPherson2
1California State University, San Luis Obispo, California, USA pfidopia@calpoly.edu.
Abstract:
N-Acetylmuramoyl-l-alanine amidases are periplasmic hydrolases that cleave the amide bond between N-acetylmuramic acid and alanine in peptidoglycan (PG). Unlike many Gram-negative bacteria that encode redundant periplasmic amidases, Vibrio fischeri appears to encode a single protein that is homologous to AmiB of Vibrio cholerae We screened a V. fischeri transposon mutant library for strains altered in biofilm production and discovered a biofilm-overproducing strain with an insertion in amiB (VF_2326). Further characterization of biofilm enhancement suggested that this phenotype was due to the overproduction of cellulose, and it was dependent on the bcsA cellulose synthase. Additionally, the amiB mutant was nonmotile, perhaps due to defects in its ability to septate during division. The amidase mutant was unable to compete with the wild type for the colonization of V. fischeri's symbiotic host, the squid Euprymna scolopes In single-strain inoculations, host squid inoculated with the mutant eventually became colonized but with a much lower efficiency than in squid inoculated with the wild type. This observation was consistent with the pleiotropic effects of the amiB mutation and led us to speculate that motile suppressors of the amiB mutant were responsible for the partially restored colonization. In culture, motile suppressor mutants carried point mutations in a single gene (VF_1477), resulting in a partial restoration of wild-type motility. In addition, these point mutations reversed the effect of the amiB mutation on cellulosic biofilm production. These data are consistent with V. fischeri AmiB possessing amidase activity; they also suggest that AmiB suppresses cellulosic biofilm formation but promotes successful host colonization.IMPORTANCE Peptidoglycan (PG) is a critical microbe-associated molecular pattern (MAMP) that is sloughed by cells of V. fischeri during symbiotic colonization of squid. Specifically, this process induces significant remodeling of a specialized symbiotic light organ within the squid mantle cavity. This phenomenon is reminiscent of the loss of ciliated epithelium in patients with whooping cough due to the production of PG monomers by Bordetella pertussis Furthermore, PG processing machinery can influence susceptibility to antimicrobials. In this study, we report roles for the V. fischeri PG amidase AmiB, including the beneficial colonization of squid, underscoring the urgency to more deeply understand PG processing machinery and the downstream consequences of their activities.
Insights
The Vibrio fischeri AmiB amidase suppresses cellulose biofilm formation but is crucial for symbiotic colonization of squid. Mutations in amiB lead to increased biofilm and impaired motility, affecting host colonization.
Area of Science:
- Microbiology
- Bacterial Physiology
- Symbiotic Interactions
Background:
- Peptidoglycan (PG) is a key microbe-associated molecular pattern (MAMP) involved in host-microbe interactions.
- N-Acetylmuramoyl-l-alanine amidases are enzymes that modify PG.
- Vibrio fischeri, a marine bacterium, forms a symbiosis with the squid Euprymna scolopes.
Purpose of the Study:
- To investigate the function of the single N-acetylmuramoyl-l-alanine amidase (AmiB) in Vibrio fischeri.
- To determine the role of AmiB in biofilm formation and squid colonization.
Main Methods:
- Screening of a Vibrio fischeri transposon mutant library for altered biofilm production.
- Characterization of amiB mutants, including analysis of biofilm formation, motility, and cellulose synthase (bcsA) dependence.
- Assessing the colonization efficiency of wild-type and amiB mutant strains in Euprymna scolopes.
Main Results:
- An amiB mutant exhibited overproduction of cellulose-dependent biofilm.
- The amiB mutant displayed nonmotility, potentially due to cell division defects.
- amiB mutants showed significantly reduced efficiency in colonizing Euprymna scolopes compared to wild-type.
- Motile suppressor mutants of the amiB mutant partially restored motility and reversed the biofilm overproduction phenotype.
Conclusions:
- Vibrio fischeri AmiB possesses amidase activity and plays a dual role: suppressing cellulosic biofilm formation and promoting successful symbiotic colonization.
- Understanding PG processing machinery, like AmiB, is critical for comprehending bacterial interactions with hosts and potential antimicrobial susceptibility.
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