Deoxyribozymes with 2‘−5‘ RNA Ligase Activity
- 8 February 2003
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 125 (9) , 2444-2454
- https://doi.org/10.1021/ja028774y
Abstract
In vitro selection was used to identify deoxyribozymes that ligate two RNA substrates. In the ligation reaction, a 2‘−5‘ RNA phosphodiester linkage is created from a 2‘,3‘-cyclic phosphate and a 5‘-hydroxyl group. The new Mg2+-dependent deoxyribozymes provide 50−60% yield of ligated RNA in overnight incubations at pH 7.5 and 37 °C, and they afford 40−50% yield in 1 h at pH 9.0 and 37 °C. Various RNA substrate sequences may be joined by simple Watson−Crick covaration of the DNA binding arms that interact with the two RNA substrates. The current deoxyribozymes have some RNA substrate sequence requirements at the nucleotides immediately surrounding the ligation junction (either UAUA↓GGAA or UAUN↓GGAA, where the arrow denotes the ligation site and N equals any nucleotide). One of the new deoxyribozymes was used to prepare by ligation the Tetrahymena group I intron RNA P4−P6 domain, a representative structured RNA. Nondenaturing gel electrophoresis revealed that a 2‘−5‘ linkage between nucleotides A233 and G234 of P4−P6 does not disrupt its Mg2+-dependent folding (ΔΔG°‘ < 0.2 kcal/mol). This demonstrates that a 2‘−5‘ linkage does not necessarily interfere with structure in a folded RNA. Therefore, these non-native linkages may be acceptable in modified RNAs when structure/function relationships are investigated. Deoxyribozymes that ligate RNA should be particularly useful for preparing site-specifically modified RNAs for studies of RNA structure, folding, and catalysis.Keywords
This publication has 41 references indexed in Scilit:
- The antiquity of RNA-based evolutionNature, 2002
- Making Catalytic DNAsScience, 2000
- Multiple Folding Pathways for the P4−P6 RNA DomainBiochemistry, 2000
- Structure and function of the hairpin ribozymeJournal of Molecular Biology, 2000
- Does a single metal ion bridge the A-9 and scissile phosphate groups in the catalytically active hammerhead ribozyme structure? 1 1Edited by J. KarnJournal of Molecular Biology, 2000
- A hydrogen-bonding triad stabilizes the chemical transition state of a group I ribozymeChemistry & Biology, 1999
- Catalytic Role of 2′-Hydroxyl Groups Within a Group II Intron Active SiteScience, 1996
- Thermodynamic Parameters To Predict Stability of RNA/DNA Hybrid DuplexesBiochemistry, 1995
- Site-Specific Modification of Pre-mRNA: the 2′-Hydroxyl Groups at the Splice SitesScience, 1992
- Catalysis of internucleotide bond formation by divalent metal ionsJournal of the American Chemical Society, 1976