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Stability and Mismatch Discrimination of Locked Nucleic Acid–DNA Duplexes

[Image: see text] Locked nucleic acids (LNA; symbols of bases, +A, +C, +G, and +T) are introduced into chemically synthesized oligonucleotides to increase duplex stability and specificity. To understand these effects, we have determined thermodynamic parameters of consecutive LNA nucleotides. We pre...

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Autores principales: Owczarzy, Richard, You, Yong, Groth, Christopher L., Tataurov, Andrey V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2011
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3201676/
https://www.ncbi.nlm.nih.gov/pubmed/21928795
http://dx.doi.org/10.1021/bi200904e
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author Owczarzy, Richard
You, Yong
Groth, Christopher L.
Tataurov, Andrey V.
author_facet Owczarzy, Richard
You, Yong
Groth, Christopher L.
Tataurov, Andrey V.
author_sort Owczarzy, Richard
collection PubMed
description [Image: see text] Locked nucleic acids (LNA; symbols of bases, +A, +C, +G, and +T) are introduced into chemically synthesized oligonucleotides to increase duplex stability and specificity. To understand these effects, we have determined thermodynamic parameters of consecutive LNA nucleotides. We present guidelines for the design of LNA oligonucleotides and introduce free online software that predicts the stability of any LNA duplex oligomer. Thermodynamic analysis shows that the single strand–duplex transition is characterized by a favorable enthalpic change and by an unfavorable loss of entropy. A single LNA modification confines the local conformation of nucleotides, causing a smaller, less unfavorable entropic loss when the single strand is restricted to the rigid duplex structure. Additional LNAs adjacent to the initial modification appear to enhance stacking and H-bonding interactions because they increase the enthalpic contributions to duplex stabilization. New nearest-neighbor parameters correctly forecast the positive and negative effects of LNAs on mismatch discrimination. Specificity is enhanced in a majority of sequences and is dependent on mismatch type and adjacent base pairs; the largest discriminatory boost occurs for the central +C·C mismatch within the +T+C+C sequence and the +A·G mismatch within the +T+A+G sequence. LNAs do not affect specificity in some sequences and even impair it for many +G·T and +C·A mismatches. The level of mismatch discrimination decreases the most for the central +G·T mismatch within the +G+G+C sequence and the +C·A mismatch within the +G+C+G sequence. We hypothesize that these discrimination changes are not unique features of LNAs but originate from the shift of the duplex conformation from B-form to A-form.
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spelling pubmed-32016762011-10-25 Stability and Mismatch Discrimination of Locked Nucleic Acid–DNA Duplexes Owczarzy, Richard You, Yong Groth, Christopher L. Tataurov, Andrey V. Biochemistry [Image: see text] Locked nucleic acids (LNA; symbols of bases, +A, +C, +G, and +T) are introduced into chemically synthesized oligonucleotides to increase duplex stability and specificity. To understand these effects, we have determined thermodynamic parameters of consecutive LNA nucleotides. We present guidelines for the design of LNA oligonucleotides and introduce free online software that predicts the stability of any LNA duplex oligomer. Thermodynamic analysis shows that the single strand–duplex transition is characterized by a favorable enthalpic change and by an unfavorable loss of entropy. A single LNA modification confines the local conformation of nucleotides, causing a smaller, less unfavorable entropic loss when the single strand is restricted to the rigid duplex structure. Additional LNAs adjacent to the initial modification appear to enhance stacking and H-bonding interactions because they increase the enthalpic contributions to duplex stabilization. New nearest-neighbor parameters correctly forecast the positive and negative effects of LNAs on mismatch discrimination. Specificity is enhanced in a majority of sequences and is dependent on mismatch type and adjacent base pairs; the largest discriminatory boost occurs for the central +C·C mismatch within the +T+C+C sequence and the +A·G mismatch within the +T+A+G sequence. LNAs do not affect specificity in some sequences and even impair it for many +G·T and +C·A mismatches. The level of mismatch discrimination decreases the most for the central +G·T mismatch within the +G+G+C sequence and the +C·A mismatch within the +G+C+G sequence. We hypothesize that these discrimination changes are not unique features of LNAs but originate from the shift of the duplex conformation from B-form to A-form. American Chemical Society 2011-09-19 2011-11-01 /pmc/articles/PMC3201676/ /pubmed/21928795 http://dx.doi.org/10.1021/bi200904e Text en Copyright © 2011 American Chemical Society http://pubs.acs.org This is an open-access article distributed under the ACS AuthorChoice Terms & Conditions. Any use of this article, must conform to the terms of that license which are available at http://pubs.acs.org.
spellingShingle Owczarzy, Richard
You, Yong
Groth, Christopher L.
Tataurov, Andrey V.
Stability and Mismatch Discrimination of Locked Nucleic Acid–DNA Duplexes
title Stability and Mismatch Discrimination of Locked Nucleic Acid–DNA Duplexes
title_full Stability and Mismatch Discrimination of Locked Nucleic Acid–DNA Duplexes
title_fullStr Stability and Mismatch Discrimination of Locked Nucleic Acid–DNA Duplexes
title_full_unstemmed Stability and Mismatch Discrimination of Locked Nucleic Acid–DNA Duplexes
title_short Stability and Mismatch Discrimination of Locked Nucleic Acid–DNA Duplexes
title_sort stability and mismatch discrimination of locked nucleic acid–dna duplexes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3201676/
https://www.ncbi.nlm.nih.gov/pubmed/21928795
http://dx.doi.org/10.1021/bi200904e
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