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Synthesis and Biophysical Properties of C5-Functionalized LNA (Locked Nucleic Acid)

[Image: see text] Oligonucleotides modified with conformationally restricted nucleotides such as locked nucleic acid (LNA) monomers are used extensively in molecular biology and medicinal chemistry to modulate gene expression at the RNA level. Major efforts have been devoted to the design of LNA der...

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Autores principales: Kumar, Pawan, Østergaard, Michael E., Baral, Bharat, Anderson, Brooke A., Guenther, Dale C., Kaura, Mamta, Raible, Daniel J., Sharma, Pawan K., Hrdlicka, Patrick J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4049237/
https://www.ncbi.nlm.nih.gov/pubmed/24825249
http://dx.doi.org/10.1021/jo500614a
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author Kumar, Pawan
Østergaard, Michael E.
Baral, Bharat
Anderson, Brooke A.
Guenther, Dale C.
Kaura, Mamta
Raible, Daniel J.
Sharma, Pawan K.
Hrdlicka, Patrick J.
author_facet Kumar, Pawan
Østergaard, Michael E.
Baral, Bharat
Anderson, Brooke A.
Guenther, Dale C.
Kaura, Mamta
Raible, Daniel J.
Sharma, Pawan K.
Hrdlicka, Patrick J.
author_sort Kumar, Pawan
collection PubMed
description [Image: see text] Oligonucleotides modified with conformationally restricted nucleotides such as locked nucleic acid (LNA) monomers are used extensively in molecular biology and medicinal chemistry to modulate gene expression at the RNA level. Major efforts have been devoted to the design of LNA derivatives that induce even higher binding affinity and specificity, greater enzymatic stability, and more desirable pharmacokinetic profiles. Most of this work has focused on modifications of LNA’s oxymethylene bridge. Here, we describe an alternative approach for modulation of the properties of LNA: i.e., through functionalization of LNA nucleobases. Twelve structurally diverse C5-functionalized LNA uridine (U) phosphoramidites were synthesized and incorporated into oligodeoxyribonucleotides (ONs), which were then characterized with respect to thermal denaturation, enzymatic stability, and fluorescence properties. ONs modified with monomers that are conjugated to small alkynes display significantly improved target affinity, binding specificity, and protection against 3′-exonucleases relative to regular LNA. In contrast, ONs modified with monomers that are conjugated to bulky hydrophobic alkynes display lower target affinity yet much greater 3′-exonuclease resistance. ONs modified with C5-fluorophore-functionalized LNA-U monomers enable fluorescent discrimination of targets with single nucleotide polymorphisms (SNPs). In concert, these properties render C5-functionalized LNA as a promising class of building blocks for RNA-targeting applications and nucleic acid diagnostics.
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spelling pubmed-40492372015-05-05 Synthesis and Biophysical Properties of C5-Functionalized LNA (Locked Nucleic Acid) Kumar, Pawan Østergaard, Michael E. Baral, Bharat Anderson, Brooke A. Guenther, Dale C. Kaura, Mamta Raible, Daniel J. Sharma, Pawan K. Hrdlicka, Patrick J. J Org Chem [Image: see text] Oligonucleotides modified with conformationally restricted nucleotides such as locked nucleic acid (LNA) monomers are used extensively in molecular biology and medicinal chemistry to modulate gene expression at the RNA level. Major efforts have been devoted to the design of LNA derivatives that induce even higher binding affinity and specificity, greater enzymatic stability, and more desirable pharmacokinetic profiles. Most of this work has focused on modifications of LNA’s oxymethylene bridge. Here, we describe an alternative approach for modulation of the properties of LNA: i.e., through functionalization of LNA nucleobases. Twelve structurally diverse C5-functionalized LNA uridine (U) phosphoramidites were synthesized and incorporated into oligodeoxyribonucleotides (ONs), which were then characterized with respect to thermal denaturation, enzymatic stability, and fluorescence properties. ONs modified with monomers that are conjugated to small alkynes display significantly improved target affinity, binding specificity, and protection against 3′-exonucleases relative to regular LNA. In contrast, ONs modified with monomers that are conjugated to bulky hydrophobic alkynes display lower target affinity yet much greater 3′-exonuclease resistance. ONs modified with C5-fluorophore-functionalized LNA-U monomers enable fluorescent discrimination of targets with single nucleotide polymorphisms (SNPs). In concert, these properties render C5-functionalized LNA as a promising class of building blocks for RNA-targeting applications and nucleic acid diagnostics. American Chemical Society 2014-05-05 2014-06-06 /pmc/articles/PMC4049237/ /pubmed/24825249 http://dx.doi.org/10.1021/jo500614a Text en Copyright © 2014 American Chemical Society
spellingShingle Kumar, Pawan
Østergaard, Michael E.
Baral, Bharat
Anderson, Brooke A.
Guenther, Dale C.
Kaura, Mamta
Raible, Daniel J.
Sharma, Pawan K.
Hrdlicka, Patrick J.
Synthesis and Biophysical Properties of C5-Functionalized LNA (Locked Nucleic Acid)
title Synthesis and Biophysical Properties of C5-Functionalized LNA (Locked Nucleic Acid)
title_full Synthesis and Biophysical Properties of C5-Functionalized LNA (Locked Nucleic Acid)
title_fullStr Synthesis and Biophysical Properties of C5-Functionalized LNA (Locked Nucleic Acid)
title_full_unstemmed Synthesis and Biophysical Properties of C5-Functionalized LNA (Locked Nucleic Acid)
title_short Synthesis and Biophysical Properties of C5-Functionalized LNA (Locked Nucleic Acid)
title_sort synthesis and biophysical properties of c5-functionalized lna (locked nucleic acid)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4049237/
https://www.ncbi.nlm.nih.gov/pubmed/24825249
http://dx.doi.org/10.1021/jo500614a
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