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Synthesis and Evaluation of Artificial Nucleic Acid Bearing an Oxanorbornane Scaffold

Natural oligonucleotides have many rotatable single bonds, and thus their structures are inherently flexible. Structural flexibility leads to an entropic loss when unwound oligonucleotides form a duplex with single-stranded DNA or RNA. An effective approach to reduce such entropic loss in the duplex...

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Autores principales: Komine, Hibiki, Mori, Shohei, Morihiro, Kunihiko, Ishida, Kenta, Okuda, Takumi, Kasahara, Yuuya, Aoyama, Hiroshi, Yamaguchi, Takao, Obika, Satoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7180610/
https://www.ncbi.nlm.nih.gov/pubmed/32283778
http://dx.doi.org/10.3390/molecules25071732
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author Komine, Hibiki
Mori, Shohei
Morihiro, Kunihiko
Ishida, Kenta
Okuda, Takumi
Kasahara, Yuuya
Aoyama, Hiroshi
Yamaguchi, Takao
Obika, Satoshi
author_facet Komine, Hibiki
Mori, Shohei
Morihiro, Kunihiko
Ishida, Kenta
Okuda, Takumi
Kasahara, Yuuya
Aoyama, Hiroshi
Yamaguchi, Takao
Obika, Satoshi
author_sort Komine, Hibiki
collection PubMed
description Natural oligonucleotides have many rotatable single bonds, and thus their structures are inherently flexible. Structural flexibility leads to an entropic loss when unwound oligonucleotides form a duplex with single-stranded DNA or RNA. An effective approach to reduce such entropic loss in the duplex-formation is the conformational restriction of the flexible phosphodiester linkage and/or sugar moiety. We here report the synthesis and biophysical properties of a novel artificial nucleic acid bearing an oxanorbornane scaffold (OxNorNA), where the adamant oxanorbornane was expected to rigidify the structures of both the linkage and sugar parts of nucleic acid. OxNorNA phosphoramidite with a uracil (U) nucleobase was successfully synthesized over 15 steps from a known sugar-derived cyclopentene. Thereafter, the given phosphoramidite was incorporated into the designed oligonucleotides. Thermal denaturation experiments revealed that oligonucleotides modified with the conformationally restricted OxNorNA-U properly form a duplex with the complementally DNA or RNA strands, although the T(m) values of OxNorNA-U-modified oligonucleotides were lower than those of the corresponding natural oligonucleotides. As we had designed, entropic loss during the duplex-formation was reduced by the OxNorNA modification. Moreover, the OxNorNA-U-modified oligonucleotide was confirmed to have extremely high stability against 3′-exonuclease activity, and its stability was even higher than those of the phosphorothioate-modified counterparts (Sp and Rp). With the overall biophysical properties of OxNorNA-U, we expect that OxNorNA could be used for specialized applications, such as conformational fixation and/or bio-stability enhancement of therapeutic oligonucleotides (e.g., aptamers).
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spelling pubmed-71806102020-05-01 Synthesis and Evaluation of Artificial Nucleic Acid Bearing an Oxanorbornane Scaffold Komine, Hibiki Mori, Shohei Morihiro, Kunihiko Ishida, Kenta Okuda, Takumi Kasahara, Yuuya Aoyama, Hiroshi Yamaguchi, Takao Obika, Satoshi Molecules Article Natural oligonucleotides have many rotatable single bonds, and thus their structures are inherently flexible. Structural flexibility leads to an entropic loss when unwound oligonucleotides form a duplex with single-stranded DNA or RNA. An effective approach to reduce such entropic loss in the duplex-formation is the conformational restriction of the flexible phosphodiester linkage and/or sugar moiety. We here report the synthesis and biophysical properties of a novel artificial nucleic acid bearing an oxanorbornane scaffold (OxNorNA), where the adamant oxanorbornane was expected to rigidify the structures of both the linkage and sugar parts of nucleic acid. OxNorNA phosphoramidite with a uracil (U) nucleobase was successfully synthesized over 15 steps from a known sugar-derived cyclopentene. Thereafter, the given phosphoramidite was incorporated into the designed oligonucleotides. Thermal denaturation experiments revealed that oligonucleotides modified with the conformationally restricted OxNorNA-U properly form a duplex with the complementally DNA or RNA strands, although the T(m) values of OxNorNA-U-modified oligonucleotides were lower than those of the corresponding natural oligonucleotides. As we had designed, entropic loss during the duplex-formation was reduced by the OxNorNA modification. Moreover, the OxNorNA-U-modified oligonucleotide was confirmed to have extremely high stability against 3′-exonuclease activity, and its stability was even higher than those of the phosphorothioate-modified counterparts (Sp and Rp). With the overall biophysical properties of OxNorNA-U, we expect that OxNorNA could be used for specialized applications, such as conformational fixation and/or bio-stability enhancement of therapeutic oligonucleotides (e.g., aptamers). MDPI 2020-04-09 /pmc/articles/PMC7180610/ /pubmed/32283778 http://dx.doi.org/10.3390/molecules25071732 Text en © 2020 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 (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Komine, Hibiki
Mori, Shohei
Morihiro, Kunihiko
Ishida, Kenta
Okuda, Takumi
Kasahara, Yuuya
Aoyama, Hiroshi
Yamaguchi, Takao
Obika, Satoshi
Synthesis and Evaluation of Artificial Nucleic Acid Bearing an Oxanorbornane Scaffold
title Synthesis and Evaluation of Artificial Nucleic Acid Bearing an Oxanorbornane Scaffold
title_full Synthesis and Evaluation of Artificial Nucleic Acid Bearing an Oxanorbornane Scaffold
title_fullStr Synthesis and Evaluation of Artificial Nucleic Acid Bearing an Oxanorbornane Scaffold
title_full_unstemmed Synthesis and Evaluation of Artificial Nucleic Acid Bearing an Oxanorbornane Scaffold
title_short Synthesis and Evaluation of Artificial Nucleic Acid Bearing an Oxanorbornane Scaffold
title_sort synthesis and evaluation of artificial nucleic acid bearing an oxanorbornane scaffold
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7180610/
https://www.ncbi.nlm.nih.gov/pubmed/32283778
http://dx.doi.org/10.3390/molecules25071732
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