A Mn-sensing riboswitch activates expression of a Mn2+/Ca2+ ATPase transporter in Streptococcus

Author:

Martin Julia E1,Le My T2,Bhattarai Nabin1,Capdevila Daiana A3,Shen Jiangchuan4,Winkler Malcolm E5,Giedroc David P3

Affiliation:

1. Department of Biological Sciences, Idaho State University, Pocatello, ID 83209, USA

2. Department of Cell Biology, Faculty of Biological Sciences, Vietnam National University, Hanoi, Vietnam

3. Department of Chemistry, Indiana University, Bloomington, IN 47405, USA

4. Department of Cellular and Molecular Biochemistry, Indiana University, Bloomington, IN 47405, USA

5. Department of Biology, Indiana University, Bloomington, IN 47405, USA

Abstract

Abstract Maintaining manganese (Mn) homeostasis is important for the virulence of numerous bacteria. In the human respiratory pathogen Streptococcus pneumoniae, the Mn-specific importer PsaBCA, exporter MntE, and transcriptional regulator PsaR establish Mn homeostasis. In other bacteria, Mn homeostasis is controlled by yybP-ykoY family riboswitches. Here, we characterize a yybP-ykoY family riboswitch upstream of the mgtA gene encoding a PII-type ATPase in S. pneumoniae, suggested previously to function in Ca2+ efflux. We show that the mgtA riboswitch aptamer domain adopts a canonical yybP-ykoY structure containing a three-way junction that is compacted in the presence of Ca2+ or Mn2+ at a physiological Mg2+ concentration. Although Ca2+ binds to the RNA aptamer with higher affinity than Mn2+, in vitro activation of transcription read-through of mgtA by Mn2+ is much greater than by Ca2+. Consistent with this result, mgtA mRNA and protein levels increase ≈5-fold during cellular Mn stress, but only in genetic backgrounds of S. pneumoniae and Bacillus subtilis that exhibit Mn2+ sensitivity, revealing that this riboswitch functions as a failsafe ‘on’ signal to prevent Mn2+ toxicity in the presence of high cellular Mn2+. In addition, our results suggest that the S. pneumoniae yybP-ykoY riboswitch functions to regulate Ca2+ efflux under these conditions.

Funder

Idaho State University

National Institutes of General Medical Sciences

Publisher

Oxford University Press (OUP)

Subject

Genetics

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