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Unprecedented tunability of riboswitch structure and regulatory function by sub-millimolar variations in physiological Mg2+
- Source :
- Nucleic Acids Research
- Publication Year :
- 2019
- Publisher :
- Oxford University Press (OUP), 2019.
-
Abstract
- Riboswitches are cis-acting regulatory RNA biosensors that rival the efficiency of those found in proteins. At the heart of their regulatory function is the formation of a highly specific aptamer–ligand complex. Understanding how these RNAs recognize the ligand to regulate gene expression at physiological concentrations of Mg2+ ions and ligand is critical given their broad impact on bacterial gene expression and their potential as antibiotic targets. In this work, we used single-molecule FRET and biochemical techniques to demonstrate that Mg2+ ions act as fine-tuning elements of the amino acid-sensing lysC aptamer's ligand-free structure in the mesophile Bacillus subtilis. Mg2+ interactions with the aptamer produce encounter complexes with strikingly different sensitivities to the ligand in different, yet equally accessible, physiological ionic conditions. Our results demonstrate that the aptamer adapts its structure and folding landscape on a Mg2+-tunable scale to efficiently respond to changes in intracellular lysine of more than two orders of magnitude. The remarkable tunability of the lysC aptamer by sub-millimolar variations in the physiological concentration of Mg2+ ions suggests that some single-aptamer riboswitches have exploited the coupling of cellular levels of ligand and divalent metal ions to tightly control gene expression.
- Subjects :
- Riboswitch
RNA Folding
Transcription, Genetic
QH301 Biology
Aptamer
NDAS
Biology
Ligands
010402 general chemistry
01 natural sciences
QH301
03 medical and health sciences
Gene expression
Fluorescence Resonance Energy Transfer
RNA and RNA-protein complexes
Genetics
Magnesium
030304 developmental biology
Regulation of gene expression
0303 health sciences
Ligand
RNA
Gene Expression Regulation, Bacterial
0104 chemical sciences
Förster resonance energy transfer
Biophysics
Function (biology)
Bacillus subtilis
Subjects
Details
- ISSN :
- 13624962 and 03051048
- Volume :
- 47
- Database :
- OpenAIRE
- Journal :
- Nucleic Acids Research
- Accession number :
- edsair.doi.dedup.....78fd94b316184f0bf91cc47831c88b6d
- Full Text :
- https://doi.org/10.1093/nar/gkz316