Participation of two sRNA RyhB homologs from the fish pathogen Yersinia ruckeri in bacterial physiology

Microbiol Res. 2021 Jan:242:126629. doi: 10.1016/j.micres.2020.126629. Epub 2020 Oct 22.

Abstract

Small noncoding RNAs (sRNAs) are important regulators of gene expression and physiology in bacteria. RyhB is an iron-responsive sRNA well characterized in Escherichia coli and conserved in other Enterobacteriaceae. In this study, we identified and characterized two RyhB homologs (named RyhB-1 and RyhB-2) in the fish pathogen Yersinia ruckeri. We found that, as in other Enterobacteriaceae, both RyhB-1 and RyhB-2 are induced under iron starvation, repressed by the Fur regulator, and depend on Hfq for stability. Despite these similarities in expression, the mutant strains of Y. ruckeri lacking RyhB-1 (ΔryhB-1) or RyhB-2 (ΔryhB-2) exhibited differential phenotypes. In comparison with the wild type, the ΔryhB-1 strain showed a hypermotile phenotype, reduced biofilm formation, increased replication rate, faster growth, and increased ATP levels in bacterial cultures. By contrast, in salmon cell cultures, the ΔryhB-1 strain exhibited an increased survival. On the other hand, the ΔryhB-2 strain was non-motile and showed augmented biofilm formation as compared to the wild type. The expression of a subset of RyhB conserved targets, selected from different bacterial species, was analyzed by quantitative RT-PCR in wild type, ΔryhB-1, ΔryhB-2, and ΔryhB-1 ΔryhB-2 strains cultured in iron-depleted media. RyhB-1 negatively affected the expression of most analyzed genes (sodB, acnA, sdhC, bfr, fliF, among others), whose functions are related to metabolism and motility, involving iron-containing proteins. Among the genes analyzed, only sdhC and bfr appeared as targets for RyhB-2. Taken together, these results indicate that Y. ruckeri RyhB homologs participate in the modulation of the bacterial physiology with non-redundant roles.

Keywords: Bacterial physiology; Iron homeostasis; RyhB; Yersinia ruckeri.

MeSH terms

  • Animals
  • Bacterial Physiological Phenomena*
  • Bacterial Proteins / genetics
  • Biofilms / growth & development
  • Escherichia coli / genetics
  • Fish Diseases / microbiology*
  • Fishes
  • Gene Deletion
  • Gene Expression Regulation, Bacterial
  • Homeostasis
  • Iron / metabolism
  • Phenotype
  • RNA, Bacterial / genetics*
  • RNA, Small Untranslated / genetics*
  • Yersinia Infections
  • Yersinia ruckeri / genetics*
  • Yersinia ruckeri / physiology*

Substances

  • Bacterial Proteins
  • RNA, Bacterial
  • RNA, Small Untranslated
  • Iron