4.4 Article

An uncommon [K+(Mg2+)2] metal ion triad imparts stability and selectivity to the Guanidine-I riboswitch

期刊

RNA
卷 27, 期 10, 页码 1257-1264

出版社

COLD SPRING HARBOR LAB PRESS, PUBLICATIONS DEPT
DOI: 10.1261/rna.078824.121

关键词

evolution; guanidine; potassium; riboswitch; structure

资金

  1. DOE Office of Science by Argonne National Laboratory [DE-AC02-06CH11357]
  2. National Institute of General Medical Sciences from the National Institutes of Health (NIH) [P30 GM124165]
  3. NIH-ORIP HEI grant [S10 RR029205]
  4. National Heart, Lung, and Blood Institute, NIH (NHLBI)
  5. NHLBI

向作者/读者索取更多资源

The ykkC-I riboswitch class shows divergent evolution, with K+ ion chelation and solvent tuning affecting ligand specificity and affinity among the riboswitches. The Burkholderia structure reveals a unique ion triad in the guanidine-binding pocket, suggesting a novel mechanism for RNA-ligand interactions. This study highlights how natural selection has shaped the versatile RNA fold of ykkC-I riboswitches.
The widespread ykkC-I riboswitch class exemplifies divergent riboswitch evolution. To analyze how natural selection has diversified its versatile RNA fold, we determined the X-ray crystal structure of the Burkholderia sp. TJI49 ykkC-I subtype-1 (Guanidine-I) riboswitch aptamer domain. Differing from the previously reported structures of orthologs from Dickeya dadantii and Sulfobacillus acidophilus, our Burkholderia structure reveals a chelated K+ ion adjacent to two Mg2+ ions in the guanidine-binding pocket. Thermal melting analysis shows that K+ chelation, which induces localized conformational changes in the binding pocket, improves guanidinium-RNA interactions. Analysis of ribosome structures suggests that the [K+(Mg2+)(2)] ion triad is uncommon. It is, however, reminiscent of metal ion clusters found in the active sites of ribozymes and DNA polymerases. Previous structural characterization of ykkC-I subtype-2 RNAs, which bind the effector ligands ppGpp and PRPP, indicate that in those paralogs, an adenine responsible for K+ chelation in the Burkholderia Guanidine-I riboswitch is replaced by a pyrimidine. This mutation results in a water molecule and Mg2+ ion binding in place of the K+ ion. Thus, our structural analysis demonstrates how ion and solvent chelation tune divergent ligand specificity and affinity among ykkC-I riboswitches.

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