Another layer of complexity in Staphylococcus aureus methionine biosynthesis control: unusual RNase III-driven T-box riboswitch cleavage determines met operon mRNA stability and decay

Author:

Wencker Freya D R1ORCID,Marincola Gabriella1ORCID,Schoenfelder Sonja M K1ORCID,Maaß Sandra2ORCID,Becher Dörte2ORCID,Ziebuhr Wilma1ORCID

Affiliation:

1. Institute of Molecular Infection Biology, University of Würzburg, Würzburg 97080, Germany

2. Institute of Microbiology, University of Greifswald, Greifswald 17489, Germany

Abstract

Abstract In Staphylococcus aureus, de novo methionine biosynthesis is regulated by a unique hierarchical pathway involving stringent-response controlled CodY repression in combination with a T-box riboswitch and RNA decay. The T-box riboswitch residing in the 5′ untranslated region (met leader RNA) of the S. aureus metICFE-mdh operon controls downstream gene transcription upon interaction with uncharged methionyl-tRNA. met leader and metICFE-mdh (m)RNAs undergo RNase-mediated degradation in a process whose molecular details are poorly understood. Here we determined the secondary structure of the met leader RNA and found the element to harbor, beyond other conserved T-box riboswitch structural features, a terminator helix which is target for RNase III endoribonucleolytic cleavage. As the terminator is a thermodynamically highly stable structure, it also forms posttranscriptionally in met leader/ metICFE-mdh read-through transcripts. Cleavage by RNase III releases the met leader from metICFE-mdh mRNA and initiates RNase J-mediated degradation of the mRNA from the 5′-end. Of note, metICFE-mdh mRNA stability varies over the length of the transcript with a longer lifespan towards the 3′-end. The obtained data suggest that coordinated RNA decay represents another checkpoint in a complex regulatory network that adjusts costly methionine biosynthesis to current metabolic requirements.

Funder

German Research Council

Transregional Collaborative Research Centre 34

ShARE

German Federal Ministry of Education and Research

Publisher

Oxford University Press (OUP)

Subject

Genetics

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