Cargando…

Optimizing anti-gene oligonucleotide ‘Zorro-LNA’ for improved strand invasion into duplex DNA

Zorro-LNA (Zorro) is a newly developed, oligonucleotide (ON)-based, Z-shaped construct with the potential of specific binding to each strand of duplex DNA. The first-generation Zorros are formed by two hybridized LNA/DNA mixmers (2-ON Zorros) and was hypothesized to strand invade. We have now establ...

Descripción completa

Detalles Bibliográficos
Autores principales: Zaghloul, Eman M., Madsen, Andreas S., Moreno, Pedro M. D., Oprea, Iulian I., El-Andaloussi, Samir, Bestas, Burcu, Gupta, Pankaj, Pedersen, Erik B., Lundin, Karin E., Wengel, Jesper, Smith, C. I. Edvard
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3035455/
https://www.ncbi.nlm.nih.gov/pubmed/20860997
http://dx.doi.org/10.1093/nar/gkq835
_version_ 1782197771139284992
author Zaghloul, Eman M.
Madsen, Andreas S.
Moreno, Pedro M. D.
Oprea, Iulian I.
El-Andaloussi, Samir
Bestas, Burcu
Gupta, Pankaj
Pedersen, Erik B.
Lundin, Karin E.
Wengel, Jesper
Smith, C. I. Edvard
author_facet Zaghloul, Eman M.
Madsen, Andreas S.
Moreno, Pedro M. D.
Oprea, Iulian I.
El-Andaloussi, Samir
Bestas, Burcu
Gupta, Pankaj
Pedersen, Erik B.
Lundin, Karin E.
Wengel, Jesper
Smith, C. I. Edvard
author_sort Zaghloul, Eman M.
collection PubMed
description Zorro-LNA (Zorro) is a newly developed, oligonucleotide (ON)-based, Z-shaped construct with the potential of specific binding to each strand of duplex DNA. The first-generation Zorros are formed by two hybridized LNA/DNA mixmers (2-ON Zorros) and was hypothesized to strand invade. We have now established a method, which conclusively demonstrates that an LNA ON can strand invade into duplex DNA. To make Zorros smaller in size and easier to design, we synthesized 3′–5′–5′–3′ single-stranded Zorro-LNA (ssZorro) by using both 3′- and 5′-phosphoramidites. With ssZorro, a significantly greater extent and rate of double-strand invasion (DSI) was obtained than with conventional 2-ON Zorros. Introducing hydrophilic PEG-linkers connecting the two strands did not significantly change the rate or extent of DSI as compared to ssZorro with a nucleotide-based linker, while the longest alkyl-chain linker tested (36 carbons) resulted in a very slow DSI. The shortest alkyl-chain linker (3 carbons) did not reduce the extent of DSI of ssZorro, but significantly decreased the DSI rate. Collectively, ssZorro is smaller in size, easier to design and more efficient than conventional 2-ON Zorro in inducing DSI. Analysis of the chemical composition of the linker suggests that it could be of importance for future therapeutic considerations.
format Text
id pubmed-3035455
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-30354552011-02-08 Optimizing anti-gene oligonucleotide ‘Zorro-LNA’ for improved strand invasion into duplex DNA Zaghloul, Eman M. Madsen, Andreas S. Moreno, Pedro M. D. Oprea, Iulian I. El-Andaloussi, Samir Bestas, Burcu Gupta, Pankaj Pedersen, Erik B. Lundin, Karin E. Wengel, Jesper Smith, C. I. Edvard Nucleic Acids Res Synthetic Biology and Chemistry Zorro-LNA (Zorro) is a newly developed, oligonucleotide (ON)-based, Z-shaped construct with the potential of specific binding to each strand of duplex DNA. The first-generation Zorros are formed by two hybridized LNA/DNA mixmers (2-ON Zorros) and was hypothesized to strand invade. We have now established a method, which conclusively demonstrates that an LNA ON can strand invade into duplex DNA. To make Zorros smaller in size and easier to design, we synthesized 3′–5′–5′–3′ single-stranded Zorro-LNA (ssZorro) by using both 3′- and 5′-phosphoramidites. With ssZorro, a significantly greater extent and rate of double-strand invasion (DSI) was obtained than with conventional 2-ON Zorros. Introducing hydrophilic PEG-linkers connecting the two strands did not significantly change the rate or extent of DSI as compared to ssZorro with a nucleotide-based linker, while the longest alkyl-chain linker tested (36 carbons) resulted in a very slow DSI. The shortest alkyl-chain linker (3 carbons) did not reduce the extent of DSI of ssZorro, but significantly decreased the DSI rate. Collectively, ssZorro is smaller in size, easier to design and more efficient than conventional 2-ON Zorro in inducing DSI. Analysis of the chemical composition of the linker suggests that it could be of importance for future therapeutic considerations. Oxford University Press 2011-02 2010-09-21 /pmc/articles/PMC3035455/ /pubmed/20860997 http://dx.doi.org/10.1093/nar/gkq835 Text en © The Author(s) 2010. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/2.5 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.5), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Synthetic Biology and Chemistry
Zaghloul, Eman M.
Madsen, Andreas S.
Moreno, Pedro M. D.
Oprea, Iulian I.
El-Andaloussi, Samir
Bestas, Burcu
Gupta, Pankaj
Pedersen, Erik B.
Lundin, Karin E.
Wengel, Jesper
Smith, C. I. Edvard
Optimizing anti-gene oligonucleotide ‘Zorro-LNA’ for improved strand invasion into duplex DNA
title Optimizing anti-gene oligonucleotide ‘Zorro-LNA’ for improved strand invasion into duplex DNA
title_full Optimizing anti-gene oligonucleotide ‘Zorro-LNA’ for improved strand invasion into duplex DNA
title_fullStr Optimizing anti-gene oligonucleotide ‘Zorro-LNA’ for improved strand invasion into duplex DNA
title_full_unstemmed Optimizing anti-gene oligonucleotide ‘Zorro-LNA’ for improved strand invasion into duplex DNA
title_short Optimizing anti-gene oligonucleotide ‘Zorro-LNA’ for improved strand invasion into duplex DNA
title_sort optimizing anti-gene oligonucleotide ‘zorro-lna’ for improved strand invasion into duplex dna
topic Synthetic Biology and Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3035455/
https://www.ncbi.nlm.nih.gov/pubmed/20860997
http://dx.doi.org/10.1093/nar/gkq835
work_keys_str_mv AT zaghloulemanm optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT madsenandreass optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT morenopedromd optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT opreaiuliani optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT elandaloussisamir optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT bestasburcu optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT guptapankaj optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT pedersenerikb optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT lundinkarine optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT wengeljesper optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna
AT smithciedvard optimizingantigeneoligonucleotidezorrolnaforimprovedstrandinvasionintoduplexdna