Role of the Filifactor alocis Hypothetical Protein FA519 in Oxidative Stress Resistance

Microbiol Spectr. 2021 Dec 22;9(3):e0121221. doi: 10.1128/Spectrum.01212-21. Epub 2021 Nov 10.

Abstract

In the periodontal pocket, there is a direct correlation between environmental conditions, the dynamic oral microbial flora, and disease. The relative abundance of several newly recognized microbial species in the oral microenvironment has raised questions on their impact on disease development. One such organism, Filifactor alocis, is significant to the pathogenic biofilm structure. Moreover, its pathogenic characteristics are highlighted by its ability to survive in the oxidative-stress microenvironment of the periodontal pocket and alter the microbial community dynamics. There is a gap in our understanding of its mechanism(s) of oxidative stress resistance and impact on pathogenicity. Several proteins, including HMPRFF0389-00519 (FA519), were observed in high abundance in F. alocis during coinfection of epithelial cells with Porphyromonas gingivalis W83. Bioinformatics analysis shows that FA519 contains a "Cys-X-X-Cys zinc ribbon domain" which could be involved in DNA binding and oxidative stress resistance. We have characterized FA519 to elucidate its roles in the oxidative stress resistance and virulence of F. alocis. Compared to the wild-type strain, the F. alocis isogenic gene deletion mutant, FLL1013 (ΔFA519::ermF), showed significantly reduced sensitivity to hydrogen peroxide and nitric oxide-induced stress. The ability to form biofilm and adhere to and invade gingival epithelial cells was also reduced in the isogenic mutant. The recombinant FA519 protein was shown to protect DNA from Fenton-mediated damage with an intrinsic ability to reduce hydrogen peroxide and disulfide bonds. Collectively, these results suggest that FA519 is involved in oxidative stress resistance and can modulate important virulence attributes in F. alocis. IMPORTANCE Filifactor alocis is an emerging member of the periodontal community and is now proposed to be a diagnostic indicator of periodontal disease. However, due to the lack of genetic tools available to study this organism, not much is known about its virulence attributes. The mechanism(s) of oxidative stress resistance in F. alocis is unknown. Therefore, identifying the adaptive mechanisms utilized by F. alocis to survive in the oxidative stress environment of the periodontal pocket would lead to understanding its virulence regulation, which could help develop novel therapeutic treatments to combat the effects of periodontal disease. This study is focused on the characterization of FA519, a hypothetical protein in F. alocis, as a multifunctional protein that plays an important role in the reactive oxygen species-detoxification pathway. Collectively, our results suggest that FA519 is involved in oxidative stress resistance and can modulate important virulence attributes in F. alocis.

Keywords: Filifactor alocis; biofilm; oxidative stress; periodontal disease; peroxidase.

Publication types

  • Research Support, N.I.H., Extramural

MeSH terms

  • Antioxidants / metabolism
  • Bacterial Proteins / genetics
  • Bacterial Proteins / metabolism*
  • Biofilms / growth & development
  • Clostridiales / genetics
  • Clostridiales / metabolism*
  • Clostridiales / pathogenicity
  • Host-Pathogen Interactions / physiology
  • Humans
  • Inactivation, Metabolic / genetics
  • Inactivation, Metabolic / physiology*
  • Microbiota / physiology
  • Oxidative Stress / physiology*
  • Oxidoreductases / genetics
  • Oxidoreductases / metabolism
  • Periodontal Diseases / microbiology
  • Periodontal Diseases / pathology
  • Periodontal Pocket / microbiology*
  • Peroxidase / metabolism
  • Porphyromonas gingivalis / growth & development
  • Porphyromonas gingivalis / metabolism
  • Reactive Oxygen Species / metabolism*
  • Thioredoxins / metabolism
  • Virulence Factors / genetics

Substances

  • Antioxidants
  • Bacterial Proteins
  • Reactive Oxygen Species
  • Virulence Factors
  • Thioredoxins
  • Oxidoreductases
  • Peroxidase

Supplementary concepts

  • Filifactor alocis