Post-transcriptional modulation of the SigF regulon in Mycobacterium smegmatis by the PhoH2 toxin-antitoxin.

Emma S V Andrews, Elizabeth Rzoska-Smith, Vickery L Arcus
Author Information
  1. Emma S V Andrews: School of Science, Division of Health, Engineering, Computing and Science, University of Waikato, Hamilton, New Zealand. ORCID
  2. Elizabeth Rzoska-Smith: School of Science, Division of Health, Engineering, Computing and Science, University of Waikato, Hamilton, New Zealand.
  3. Vickery L Arcus: School of Science, Division of Health, Engineering, Computing and Science, University of Waikato, Hamilton, New Zealand.

Abstract

PhoH2 proteins are highly conserved across bacteria and archaea yet their biological function is poorly characterised. We examined the growth profiles of Mycobacterium smegmatis strains mc2155 and mc2155 ΔphoH2 and observed the same growth profile and growth rate in a variety of conditions. In light of the comparable growth, we used RNAseq to provide a snapshot of the differences between the transcriptomes of M. smegmatis mc2155 and M. smegmatis mc2155 ΔphoH2 during normal growth. At 48 hours, elevated expression of the sigF regulon was observed in ΔphoH2 relative to wild type. In biochemical assays, PhoH2 showed activity toward sigF mRNA insinuating a role of PhoH2 in modulating the pool of sigF mRNA in the cell during normal growth, adding further complexity to the repertoire of reported mechanisms of post-translational regulation. Multiple copies of the preferred target site of PhoH2 were identified in loops of the sigF mRNA structure, leading us to propose a mechanism for the activity of PhoH2 that is initiated after assembly on specific single-stranded loops of RNA. We hypothesise that PhoH2 is a toxin-antitoxin that contributes to the regulation of SigF at a post-transcriptional level through targeted activity on sigF mRNA. This work presents the first evidence for post-transcriptional regulation of SigF along with the biological function of PhoH2 from M. smegmatis. This has implications for the highly conserved PhoH2 toxin-antitoxin module across the mycobacteria including the important human pathogen M. tuberculosis.

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MeSH Term

Bacterial Proteins
Bacterial Toxins
Gene Expression Regulation, Bacterial
Mycobacterium smegmatis
Protein Processing, Post-Translational
RNA, Messenger
Sigma Factor

Chemicals

Bacterial Proteins
Bacterial Toxins
FliA protein, Bacteria
RNA, Messenger
Sigma Factor

Word Cloud

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