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Hybridisation Potential of 1',3'-Di-O-methylaltropyranoside Nucleic Acids

In further study of our series of six-membered ring-containing nucleic acids, different 1',3'-di-O-methyl altropyranoside nucleoside analogs (DMANA) were synthesized comprising all four base moieties, adenine, cytosine, uracil and guanine. Following assembly into oligonucleotides (ONs), th...

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Autores principales: Venkatesham, Akkaladevi, Kachare, Dhuldeo, Schepers, Guy, Rozenski, Jef, Froeyen, Mathy, Van Aerschot, Arthur
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6272658/
https://www.ncbi.nlm.nih.gov/pubmed/25741897
http://dx.doi.org/10.3390/molecules20034020
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author Venkatesham, Akkaladevi
Kachare, Dhuldeo
Schepers, Guy
Rozenski, Jef
Froeyen, Mathy
Van Aerschot, Arthur
author_facet Venkatesham, Akkaladevi
Kachare, Dhuldeo
Schepers, Guy
Rozenski, Jef
Froeyen, Mathy
Van Aerschot, Arthur
author_sort Venkatesham, Akkaladevi
collection PubMed
description In further study of our series of six-membered ring-containing nucleic acids, different 1',3'-di-O-methyl altropyranoside nucleoside analogs (DMANA) were synthesized comprising all four base moieties, adenine, cytosine, uracil and guanine. Following assembly into oligonucleotides (ONs), their affinity for natural oligonucleotides was evaluated by thermal denaturation of the respective duplexes. Data were compared with results obtained previously for both anhydrohexitol (HNAs) and 3'-O-methylated altrohexitol modified ONs (MANAs). We hereby demonstrate that ONs modified with DMANA monomers, unlike some of our previously described analogues with constrained 6-membered hexitol rings, did not improve thermodynamic stability of dsRNA complexes, most probably in view of an energetic penalty when forced in the required 1C4 pairing conformation. Overall, a single incorporation was more or less tolerated or even positive for the adenine congener, but incorporation of a second modification afforded a slight destabilization (except for A), while a fully modified sequence displayed a thermal stability of −0.3 °C per modification. The selectivity of pairing remained very high, and the new modification upon incorporation into a DNA strand, strongly destabilized the corresponding DNA duplexes. Unfortunately, this new modification does not bring any advantage to be further evaluated for antisense or siRNA applications.
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spelling pubmed-62726582018-12-31 Hybridisation Potential of 1',3'-Di-O-methylaltropyranoside Nucleic Acids Venkatesham, Akkaladevi Kachare, Dhuldeo Schepers, Guy Rozenski, Jef Froeyen, Mathy Van Aerschot, Arthur Molecules Article In further study of our series of six-membered ring-containing nucleic acids, different 1',3'-di-O-methyl altropyranoside nucleoside analogs (DMANA) were synthesized comprising all four base moieties, adenine, cytosine, uracil and guanine. Following assembly into oligonucleotides (ONs), their affinity for natural oligonucleotides was evaluated by thermal denaturation of the respective duplexes. Data were compared with results obtained previously for both anhydrohexitol (HNAs) and 3'-O-methylated altrohexitol modified ONs (MANAs). We hereby demonstrate that ONs modified with DMANA monomers, unlike some of our previously described analogues with constrained 6-membered hexitol rings, did not improve thermodynamic stability of dsRNA complexes, most probably in view of an energetic penalty when forced in the required 1C4 pairing conformation. Overall, a single incorporation was more or less tolerated or even positive for the adenine congener, but incorporation of a second modification afforded a slight destabilization (except for A), while a fully modified sequence displayed a thermal stability of −0.3 °C per modification. The selectivity of pairing remained very high, and the new modification upon incorporation into a DNA strand, strongly destabilized the corresponding DNA duplexes. Unfortunately, this new modification does not bring any advantage to be further evaluated for antisense or siRNA applications. MDPI 2015-03-03 /pmc/articles/PMC6272658/ /pubmed/25741897 http://dx.doi.org/10.3390/molecules20034020 Text en © 2015 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Venkatesham, Akkaladevi
Kachare, Dhuldeo
Schepers, Guy
Rozenski, Jef
Froeyen, Mathy
Van Aerschot, Arthur
Hybridisation Potential of 1',3'-Di-O-methylaltropyranoside Nucleic Acids
title Hybridisation Potential of 1',3'-Di-O-methylaltropyranoside Nucleic Acids
title_full Hybridisation Potential of 1',3'-Di-O-methylaltropyranoside Nucleic Acids
title_fullStr Hybridisation Potential of 1',3'-Di-O-methylaltropyranoside Nucleic Acids
title_full_unstemmed Hybridisation Potential of 1',3'-Di-O-methylaltropyranoside Nucleic Acids
title_short Hybridisation Potential of 1',3'-Di-O-methylaltropyranoside Nucleic Acids
title_sort hybridisation potential of 1',3'-di-o-methylaltropyranoside nucleic acids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6272658/
https://www.ncbi.nlm.nih.gov/pubmed/25741897
http://dx.doi.org/10.3390/molecules20034020
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