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Thermodynamic contributions of single internal rA·dA, rC·dC, rG·dG and rU·dT mismatches in RNA/DNA duplexes

The thermodynamic contributions of rA·dA, rC·dC, rG·dG and rU·dT single internal mismatches were measured for 54 RNA/DNA duplexes in a 1 M NaCl buffer using UV absorbance thermal denaturation. Thermodynamic parameters were obtained by fitting absorbance versus temperature profiles using the curve-fi...

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Autores principales: Watkins, Norman E., Kennelly, William J., Tsay, Mike J., Tuin, Astrid, Swenson, Lara, Lee, Hyung-Ran, Morosyuk, Svetlana, Hicks, Donald A., SantaLucia, John
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2011
Materias:
RNA
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3061078/
https://www.ncbi.nlm.nih.gov/pubmed/21071398
http://dx.doi.org/10.1093/nar/gkq905
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author Watkins, Norman E.
Kennelly, William J.
Tsay, Mike J.
Tuin, Astrid
Swenson, Lara
Lee, Hyung-Ran
Morosyuk, Svetlana
Hicks, Donald A.
SantaLucia, John
author_facet Watkins, Norman E.
Kennelly, William J.
Tsay, Mike J.
Tuin, Astrid
Swenson, Lara
Lee, Hyung-Ran
Morosyuk, Svetlana
Hicks, Donald A.
SantaLucia, John
author_sort Watkins, Norman E.
collection PubMed
description The thermodynamic contributions of rA·dA, rC·dC, rG·dG and rU·dT single internal mismatches were measured for 54 RNA/DNA duplexes in a 1 M NaCl buffer using UV absorbance thermal denaturation. Thermodynamic parameters were obtained by fitting absorbance versus temperature profiles using the curve-fitting program Meltwin. The weighted average thermodynamic data were fit using singular value decomposition to determine the eight non-unique nearest-neighbor parameters for each internal mismatch. The new parameters predict the ΔG°(37), ΔH° and melting temperature (T(m)) of duplexes containing these single mismatches within an average of 0.33 kcal/mol, 4.5 kcal/mol and 1.4°C, respectively. The general trend in decreasing stability for the single internal mismatches is rG·dG > rU·dT > rA·dA > rC·dC. The stability trend for the base pairs 5′ of the single internal mismatch is rG·dC > rC·dG > rA·dT > rU·dA. The stability trend for the base pairs 3′ of the single internal mismatch is rC·dG > rG·dC >> rA·dT > rU·dA. These nearest-neighbor values are now a part of a complete set of single internal mismatch thermodynamic parameters for RNA/DNA duplexes that are incorporated into the nucleic acid assay development software programs Visual oligonucleotide modeling platform (OMP) and ThermoBLAST.
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spelling pubmed-30610782011-03-21 Thermodynamic contributions of single internal rA·dA, rC·dC, rG·dG and rU·dT mismatches in RNA/DNA duplexes Watkins, Norman E. Kennelly, William J. Tsay, Mike J. Tuin, Astrid Swenson, Lara Lee, Hyung-Ran Morosyuk, Svetlana Hicks, Donald A. SantaLucia, John Nucleic Acids Res RNA The thermodynamic contributions of rA·dA, rC·dC, rG·dG and rU·dT single internal mismatches were measured for 54 RNA/DNA duplexes in a 1 M NaCl buffer using UV absorbance thermal denaturation. Thermodynamic parameters were obtained by fitting absorbance versus temperature profiles using the curve-fitting program Meltwin. The weighted average thermodynamic data were fit using singular value decomposition to determine the eight non-unique nearest-neighbor parameters for each internal mismatch. The new parameters predict the ΔG°(37), ΔH° and melting temperature (T(m)) of duplexes containing these single mismatches within an average of 0.33 kcal/mol, 4.5 kcal/mol and 1.4°C, respectively. The general trend in decreasing stability for the single internal mismatches is rG·dG > rU·dT > rA·dA > rC·dC. The stability trend for the base pairs 5′ of the single internal mismatch is rG·dC > rC·dG > rA·dT > rU·dA. The stability trend for the base pairs 3′ of the single internal mismatch is rC·dG > rG·dC >> rA·dT > rU·dA. These nearest-neighbor values are now a part of a complete set of single internal mismatch thermodynamic parameters for RNA/DNA duplexes that are incorporated into the nucleic acid assay development software programs Visual oligonucleotide modeling platform (OMP) and ThermoBLAST. Oxford University Press 2011-03 2010-11-10 /pmc/articles/PMC3061078/ /pubmed/21071398 http://dx.doi.org/10.1093/nar/gkq905 Text en © The Author(s) 2010. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/2.5 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.5), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle RNA
Watkins, Norman E.
Kennelly, William J.
Tsay, Mike J.
Tuin, Astrid
Swenson, Lara
Lee, Hyung-Ran
Morosyuk, Svetlana
Hicks, Donald A.
SantaLucia, John
Thermodynamic contributions of single internal rA·dA, rC·dC, rG·dG and rU·dT mismatches in RNA/DNA duplexes
title Thermodynamic contributions of single internal rA·dA, rC·dC, rG·dG and rU·dT mismatches in RNA/DNA duplexes
title_full Thermodynamic contributions of single internal rA·dA, rC·dC, rG·dG and rU·dT mismatches in RNA/DNA duplexes
title_fullStr Thermodynamic contributions of single internal rA·dA, rC·dC, rG·dG and rU·dT mismatches in RNA/DNA duplexes
title_full_unstemmed Thermodynamic contributions of single internal rA·dA, rC·dC, rG·dG and rU·dT mismatches in RNA/DNA duplexes
title_short Thermodynamic contributions of single internal rA·dA, rC·dC, rG·dG and rU·dT mismatches in RNA/DNA duplexes
title_sort thermodynamic contributions of single internal ra·da, rc·dc, rg·dg and ru·dt mismatches in rna/dna duplexes
topic RNA
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3061078/
https://www.ncbi.nlm.nih.gov/pubmed/21071398
http://dx.doi.org/10.1093/nar/gkq905
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