Insights into the global effect on Staphylococcus aureus growth arrest by induction of the endoribonuclease MazF toxin

Author:

Sierra Roberto12ORCID,Prados Julien2ORCID,Panasenko Olesya O1ORCID,Andrey Diego O12,Fleuchot Betty2,Redder Peter3,Kelley William L2,Viollier Patrick H2ORCID,Renzoni Adriana12

Affiliation:

1. Service of Infectious Diseases, Department of Medical Specialties, Geneva University Hospitals and Medical School, Geneva 1211, Switzerland

2. Department of Microbiology and Molecular Medicine, University of Geneva, Geneva 1211, Switzerland

3. Centre de Biologie Intégrative, Université de Toulouse III, Toulouse 31400, France

Abstract

Abstract A crucial bacterial strategy to avoid killing by antibiotics is to enter a growth arrested state, yet the molecular mechanisms behind this process remain elusive. The conditional overexpression of mazF, the endoribonuclease toxin of the MazEF toxin–antitoxin system in Staphylococcus aureus, is one approach to induce bacterial growth arrest, but its targets remain largely unknown. We used overexpression of mazF and high-throughput sequence analysis following the exact mapping of non-phosphorylated transcriptome ends (nEMOTE) technique to reveal in vivo toxin cleavage sites on a global scale. We obtained a catalogue of MazF cleavage sites and unearthed an extended MazF cleavage specificity that goes beyond the previously reported one. We correlated transcript cleavage and abundance in a global transcriptomic profiling during mazF overexpression. We observed that MazF affects RNA molecules involved in ribosome biogenesis, cell wall synthesis, cell division and RNA turnover and thus deliver a plausible explanation for how mazF overexpression induces stasis. We hypothesize that autoregulation of MazF occurs by directly modulating the MazEF operon, such as the rsbUVW genes that regulate the sigma factor SigB, including an observed cleavage site on the MazF mRNA that would ultimately play a role in entry and exit from bacterial stasis.

Funder

Swiss National Science Foundation

Foundation privée

Publisher

Oxford University Press (OUP)

Subject

Genetics

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