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C5-Alkynyl-Functionalized α-L-LNA: Synthesis, Thermal Denaturation Experiments and Enzymatic Stability

[Image: see text] Major efforts are currently being devoted to improving the binding affinity, target specificity, and enzymatic stability of oligonucleotides used for nucleic acid targeting applications in molecular biology, biotechnology, and medicinal chemistry. One of the most popular strategies...

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Detalles Bibliográficos
Autores principales: Kumar, Pawan, Baral, Bharat, Anderson, Brooke A., Guenther, Dale C., Østergaard, Michael E., 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/PMC4049248/
https://www.ncbi.nlm.nih.gov/pubmed/24797769
http://dx.doi.org/10.1021/jo5006153
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author Kumar, Pawan
Baral, Bharat
Anderson, Brooke A.
Guenther, Dale C.
Østergaard, Michael E.
Sharma, Pawan K.
Hrdlicka, Patrick J.
author_facet Kumar, Pawan
Baral, Bharat
Anderson, Brooke A.
Guenther, Dale C.
Østergaard, Michael E.
Sharma, Pawan K.
Hrdlicka, Patrick J.
author_sort Kumar, Pawan
collection PubMed
description [Image: see text] Major efforts are currently being devoted to improving the binding affinity, target specificity, and enzymatic stability of oligonucleotides used for nucleic acid targeting applications in molecular biology, biotechnology, and medicinal chemistry. One of the most popular strategies toward this end has been to introduce additional modifications to the sugar ring of affinity-inducing conformationally restricted nucleotide building blocks such as locked nucleic acid (LNA). In the preceding article in this issue, we introduced a different strategy toward this end, i.e., C5-functionalization of LNA uridines. In the present article, we extend this strategy to α-L-LNA: i.e., one of the most interesting diastereomers of LNA. α-L-LNA uridine monomers that are conjugated to small C5-alkynyl substituents induce significant improvements in target affinity, binding specificity, and enzymatic stability relative to conventional α-L-LNA. The results from the back-to-back articles therefore suggest that C5-functionalization of pyrimidines is a general and synthetically straightforward approach to modulate biophysical properties of oligonucleotides modified with LNA or other conformationally restricted monomers.
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spelling pubmed-40492482015-05-05 C5-Alkynyl-Functionalized α-L-LNA: Synthesis, Thermal Denaturation Experiments and Enzymatic Stability Kumar, Pawan Baral, Bharat Anderson, Brooke A. Guenther, Dale C. Østergaard, Michael E. Sharma, Pawan K. Hrdlicka, Patrick J. J Org Chem [Image: see text] Major efforts are currently being devoted to improving the binding affinity, target specificity, and enzymatic stability of oligonucleotides used for nucleic acid targeting applications in molecular biology, biotechnology, and medicinal chemistry. One of the most popular strategies toward this end has been to introduce additional modifications to the sugar ring of affinity-inducing conformationally restricted nucleotide building blocks such as locked nucleic acid (LNA). In the preceding article in this issue, we introduced a different strategy toward this end, i.e., C5-functionalization of LNA uridines. In the present article, we extend this strategy to α-L-LNA: i.e., one of the most interesting diastereomers of LNA. α-L-LNA uridine monomers that are conjugated to small C5-alkynyl substituents induce significant improvements in target affinity, binding specificity, and enzymatic stability relative to conventional α-L-LNA. The results from the back-to-back articles therefore suggest that C5-functionalization of pyrimidines is a general and synthetically straightforward approach to modulate biophysical properties of oligonucleotides modified with LNA or other conformationally restricted monomers. American Chemical Society 2014-05-05 2014-06-06 /pmc/articles/PMC4049248/ /pubmed/24797769 http://dx.doi.org/10.1021/jo5006153 Text en Copyright © 2014 American Chemical Society
spellingShingle Kumar, Pawan
Baral, Bharat
Anderson, Brooke A.
Guenther, Dale C.
Østergaard, Michael E.
Sharma, Pawan K.
Hrdlicka, Patrick J.
C5-Alkynyl-Functionalized α-L-LNA: Synthesis, Thermal Denaturation Experiments and Enzymatic Stability
title C5-Alkynyl-Functionalized α-L-LNA: Synthesis, Thermal Denaturation Experiments and Enzymatic Stability
title_full C5-Alkynyl-Functionalized α-L-LNA: Synthesis, Thermal Denaturation Experiments and Enzymatic Stability
title_fullStr C5-Alkynyl-Functionalized α-L-LNA: Synthesis, Thermal Denaturation Experiments and Enzymatic Stability
title_full_unstemmed C5-Alkynyl-Functionalized α-L-LNA: Synthesis, Thermal Denaturation Experiments and Enzymatic Stability
title_short C5-Alkynyl-Functionalized α-L-LNA: Synthesis, Thermal Denaturation Experiments and Enzymatic Stability
title_sort c5-alkynyl-functionalized α-l-lna: synthesis, thermal denaturation experiments and enzymatic stability
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4049248/
https://www.ncbi.nlm.nih.gov/pubmed/24797769
http://dx.doi.org/10.1021/jo5006153
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