Cargando…

Recombination R-triplex: H-bonds contribution to stability as revealed with minor base substitutions for adenine

Several cellular processes involve alignment of three nucleic acids strands, in which the third strand (DNA or RNA) is identical and in a parallel orientation to one of the DNA duplex strands. Earlier, using 2-aminopurine as a fluorescent reporter base, we demonstrated that a self-folding oligonucle...

Descripción completa

Detalles Bibliográficos
Autores principales: Shchyolkina, Anna K., Kaluzhny, Dmitry N., Arndt-Jovin, Donna J., Jovin, Thomas M., Zhurkin, Victor B.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1500870/
https://www.ncbi.nlm.nih.gov/pubmed/16798913
http://dx.doi.org/10.1093/nar/gkl431
_version_ 1782128377322274816
author Shchyolkina, Anna K.
Kaluzhny, Dmitry N.
Arndt-Jovin, Donna J.
Jovin, Thomas M.
Zhurkin, Victor B.
author_facet Shchyolkina, Anna K.
Kaluzhny, Dmitry N.
Arndt-Jovin, Donna J.
Jovin, Thomas M.
Zhurkin, Victor B.
author_sort Shchyolkina, Anna K.
collection PubMed
description Several cellular processes involve alignment of three nucleic acids strands, in which the third strand (DNA or RNA) is identical and in a parallel orientation to one of the DNA duplex strands. Earlier, using 2-aminopurine as a fluorescent reporter base, we demonstrated that a self-folding oligonucleotide forms a recombination-like structure consistent with the R-triplex. Here, we extended this approach, placing the reporter 2-aminopurine either in the 5′- or 3′-strand. We obtained direct evidence that the 3′-strand forms a stable duplex with the complementary central strand, while the 5′-strand participates in non-Watson–Crick interactions. Substituting 2,6-diaminopurine or 7-deazaadenine for adenine, we tested and confirmed the proposed hydrogen bonding scheme of the A*(T·A) R-type triplet. The adenine substitutions expected to provide additional H-bonds led to triplex structures with increased stability, whereas the substitutions consistent with a decrease in the number of H-bonds destabilized the triplex. The triplex formation enthalpies and free energies exhibited linear dependences on the number of H-bonds predicted from the A*(T·A) triplet scheme. The enthalpy of the 10 nt long intramolecular triplex of −100 kJ·mol(−1) demonstrates that the R-triplex is relatively unstable and thus an ideal candidate for a transient intermediate in homologous recombination, t-loop formation at the mammalian telomere ends, and short RNA invasion into a duplex. On the other hand, the impact of a single H-bond, 18 kJ·mol(−1), is high compared with the overall triplex formation enthalpy. The observed energy advantage of a ‘correct’ base in the third strand opposite the Watson–Crick base pair may be a powerful mechanism for securing selectivity of recognition between the single strand and the duplex.
format Text
id pubmed-1500870
institution National Center for Biotechnology Information
language English
publishDate 2006
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-15008702006-07-18 Recombination R-triplex: H-bonds contribution to stability as revealed with minor base substitutions for adenine Shchyolkina, Anna K. Kaluzhny, Dmitry N. Arndt-Jovin, Donna J. Jovin, Thomas M. Zhurkin, Victor B. Nucleic Acids Res Article Several cellular processes involve alignment of three nucleic acids strands, in which the third strand (DNA or RNA) is identical and in a parallel orientation to one of the DNA duplex strands. Earlier, using 2-aminopurine as a fluorescent reporter base, we demonstrated that a self-folding oligonucleotide forms a recombination-like structure consistent with the R-triplex. Here, we extended this approach, placing the reporter 2-aminopurine either in the 5′- or 3′-strand. We obtained direct evidence that the 3′-strand forms a stable duplex with the complementary central strand, while the 5′-strand participates in non-Watson–Crick interactions. Substituting 2,6-diaminopurine or 7-deazaadenine for adenine, we tested and confirmed the proposed hydrogen bonding scheme of the A*(T·A) R-type triplet. The adenine substitutions expected to provide additional H-bonds led to triplex structures with increased stability, whereas the substitutions consistent with a decrease in the number of H-bonds destabilized the triplex. The triplex formation enthalpies and free energies exhibited linear dependences on the number of H-bonds predicted from the A*(T·A) triplet scheme. The enthalpy of the 10 nt long intramolecular triplex of −100 kJ·mol(−1) demonstrates that the R-triplex is relatively unstable and thus an ideal candidate for a transient intermediate in homologous recombination, t-loop formation at the mammalian telomere ends, and short RNA invasion into a duplex. On the other hand, the impact of a single H-bond, 18 kJ·mol(−1), is high compared with the overall triplex formation enthalpy. The observed energy advantage of a ‘correct’ base in the third strand opposite the Watson–Crick base pair may be a powerful mechanism for securing selectivity of recognition between the single strand and the duplex. Oxford University Press 2006 2006-07-04 /pmc/articles/PMC1500870/ /pubmed/16798913 http://dx.doi.org/10.1093/nar/gkl431 Text en © 2006 The Author(s)
spellingShingle Article
Shchyolkina, Anna K.
Kaluzhny, Dmitry N.
Arndt-Jovin, Donna J.
Jovin, Thomas M.
Zhurkin, Victor B.
Recombination R-triplex: H-bonds contribution to stability as revealed with minor base substitutions for adenine
title Recombination R-triplex: H-bonds contribution to stability as revealed with minor base substitutions for adenine
title_full Recombination R-triplex: H-bonds contribution to stability as revealed with minor base substitutions for adenine
title_fullStr Recombination R-triplex: H-bonds contribution to stability as revealed with minor base substitutions for adenine
title_full_unstemmed Recombination R-triplex: H-bonds contribution to stability as revealed with minor base substitutions for adenine
title_short Recombination R-triplex: H-bonds contribution to stability as revealed with minor base substitutions for adenine
title_sort recombination r-triplex: h-bonds contribution to stability as revealed with minor base substitutions for adenine
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1500870/
https://www.ncbi.nlm.nih.gov/pubmed/16798913
http://dx.doi.org/10.1093/nar/gkl431
work_keys_str_mv AT shchyolkinaannak recombinationrtriplexhbondscontributiontostabilityasrevealedwithminorbasesubstitutionsforadenine
AT kaluzhnydmitryn recombinationrtriplexhbondscontributiontostabilityasrevealedwithminorbasesubstitutionsforadenine
AT arndtjovindonnaj recombinationrtriplexhbondscontributiontostabilityasrevealedwithminorbasesubstitutionsforadenine
AT jovinthomasm recombinationrtriplexhbondscontributiontostabilityasrevealedwithminorbasesubstitutionsforadenine
AT zhurkinvictorb recombinationrtriplexhbondscontributiontostabilityasrevealedwithminorbasesubstitutionsforadenine