BpsR Modulates Bordetella Biofilm Formation by Negatively Regulating the Expression of the Bps Polysaccharide

Author:

Conover Matt S.1,Redfern Crystal J.2,Ganguly Tridib2,Sukumar Neelima2,Sloan Gina2,Mishra Meenu2,Deora Rajendar123

Affiliation:

1. Program in Molecular Genetics, Wake Forest University Health Sciences, Winston-Salem, North Carolina, USA

2. Department of Microbiology and Immunology, Wake Forest University Health Sciences, Winston-Salem, North Carolina, USA

3. Wake Forest Institute of Regenerative Medicine, Wake Forest University Health Sciences, Winston-Salem, North Carolina, USA

Abstract

ABSTRACT Bordetella bacteria are Gram-negative respiratory pathogens of animals, birds, and humans. A hallmark feature of some Bordetella species is their ability to efficiently survive in the respiratory tract even after vaccination. Bordetella bronchiseptica and Bordetella pertussis form biofilms on abiotic surfaces and in the mouse respiratory tract. The Bps exopolysaccharide is one of the critical determinants for biofilm formation and the survival of Bordetella in the murine respiratory tract. In order to gain a better understanding of regulation of biofilm formation, we sought to study the mechanism by which Bps expression is controlled in Bordetella . Expression of bpsABCD ( bpsA-D ) is elevated in biofilms compared with levels in planktonically grown cells. We found that bpsA-D is expressed independently of BvgAS. Subsequently, we identified an open reading frame (ORF), BB1771 (designated here bpsR ), that is located upstream of and in the opposite orientation to the bpsA-D locus. BpsR is homologous to the MarR family of transcriptional regulators. Measurement of bpsA and bpsD transcripts and the Bps polysaccharide levels from the wild-type and the Δ bpsR strains suggested that BpsR functions as a repressor. Consistent with enhanced production of Bps, the bpsR mutant displayed considerably more structured biofilms. We mapped the bpsA-D promoter region and showed that purified BpsR protein specifically bound to the bpsA-D promoter. Our results provide mechanistic insights into the regulatory strategy employed by Bordetella for control of the production of the Bps polysaccharide and biofilm formation.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

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