An mRNA structure that controls gene expression by binding S-adenosylmethionine
- 10 August 2003
- journal article
- research article
- Published by Springer Nature in Nature Structural & Molecular Biology
- Vol. 10 (9) , 701-707
- https://doi.org/10.1038/nsb967
Abstract
Riboswitches are metabolite-binding RNA structures that serve as genetic control elements for certain messenger RNAs. These RNA switches have been identified in all three kingdoms of life and are typically responsible for the control of genes whose protein products are involved in the biosynthesis, transport or utilization of the target metabolite. Herein, we report that a highly conserved RNA domain found in bacteria serves as a riboswitch that responds to the coenzyme S-adenosylmethionine (SAM) with remarkably high affinity and specificity. SAM riboswitches undergo structural reorganization upon introduction of SAM, and these allosteric changes regulate the expression of 26 genes in Bacillus subtilis. This and related findings indicate that direct interaction between small metabolites and allosteric mRNAs is an important and widespread form of genetic regulation in bacteria.Keywords
This publication has 28 references indexed in Scilit:
- Metabolite-binding RNA domains are present in the genes of eukaryotesRNA, 2003
- Riboswitches Control Fundamental Biochemical Pathways in Bacillus subtilis and Other BacteriaPublished by Elsevier ,2003
- Comparative Genomics of Thiamin Biosynthesis in ProcaryotesJournal of Biological Chemistry, 2002
- Sensing Small Molecules by Nascent RNACell, 2002
- Genetic Control by a Metabolite Binding mRNAPublished by Elsevier ,2002
- The antiquity of RNA-based evolutionNature, 2002
- Transcriptome analysis documents induced competence ofBacillus subtilisduring nitrogen limiting conditionsFEMS Microbiology Letters, 2002
- A conserved RNA structure element involved in the regulation of bacterial riboflavin synthesis genesTrends in Genetics, 1999
- DIVERSITY OF OLIGONUCLEOTIDE FUNCTIONSAnnual Review of Biochemistry, 1995
- Coenzymes as fossils of an earlier metabolic stateJournal of Molecular Evolution, 1976