Complete Nucleotide Sequence Analysis of a Novel Bacillus subtilis-Infecting Bacteriophage BSP10 and Its Effect on Poly-Gamma-Glutamic Acid Degradation

Viruses. 2018 May 4;10(5):240. doi: 10.3390/v10050240.

Abstract

While the harmful effects of lactic acid bacterial bacteriophages in the dairy industry are well-established, the importance of Bacillus subtilis-infecting bacteriophages on soybean fermentation is poorly-studied. In this study, we isolated a B. subtilis-infecting bacteriophage BSP10 from Meju (a brick of dried fermented soybean) and further characterized it. This Myoviridae family bacteriophage exhibited a narrow host range against B. subtilis strains (17/52, 32.7%). The genome of bacteriophage BSP10 is 153,767 bp long with 236 open reading frames and 5 tRNAs. Comparative genomics (using dot plot, progressiveMauve alignment, heat-plot, and BLASTN) and phylogenetic analysis strongly suggest its incorporation as a new species in the Nit1virus genus. Furthermore, bacteriophage BSP10 was efficient in the growth inhibition of B. subtilis ATCC 15245 in liquid culture and in Cheonggukjang (a soybean fermented food) fermentation. Artificial contamination of as low as 10² PFU/g of bacteriophage BSP10 during Cheonggukjang fermentation significantly reduced bacterial numbers by up to 112 fold in comparison to the control (no bacteriophage). Moreover, for the first time, we experimentally proved that B. subtilis-infecting bacteriophage greatly enhanced poly-γ-glutamic acid degradation during soybean fermentation, which is likely to negatively affect the functionalities of Cheonggukjang.

Keywords: Bacillus subtilis; Nit1virus; PGA hydrolase; complete genome sequence; soybean-based fermented foods.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Bacillus Phages / classification
  • Bacillus Phages / genetics*
  • Bacillus Phages / isolation & purification
  • Bacillus subtilis / virology*
  • Fermentation
  • Fermented Foods / microbiology
  • Fermented Foods / virology
  • Food Microbiology
  • Genome, Viral*
  • Glycine max
  • Host Specificity
  • Myoviridae / classification
  • Myoviridae / genetics
  • Myoviridae / isolation & purification
  • Phylogeny
  • Polyglutamic Acid / analogs & derivatives*
  • Polyglutamic Acid / metabolism
  • Sequence Analysis, DNA

Substances

  • poly(gamma-glutamic acid)
  • Polyglutamic Acid