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LNA modification of single-stranded DNA oligonucleotides allows subtle gene modification in mismatch-repair-proficient cells.

Thomas W van Ravesteyn ,
Marleen Dekker ,
Alexander Fish ,
Titia K Sixma ,
Astrid Wolters ,
Rob J Dekker ,
Hein P J Te Riele

Abstract

Synthetic single-stranded DNA oligonucleotides (ssODNs) can be used to generate subtle genetic modifications in eukaryotic and prokaryotic cells without the requirement for prior generation of DNA double-stranded breaks. However, DNA mismatch repair (MMR) suppresses the efficiency of gene modification by >100-fold. Here we present a commercially available ssODN design that evades MMR and enables subtle gene modification in MMR-proficient cells. The presence of locked nucleic acids (LNAs) in the ssODNs at mismatching bases, or also at directly adjacent bases, allowed 1-, 2-, or 3-bp substitutions in MMR-proficient mouse embryonic stem cells as effectively as in MMR-deficient cells. Additionally, in MMR-proficient Escherichia coli, LNA modification of the ssODNs enabled effective single-base-pair substitution. In vitro, LNA modification of mismatches precluded binding of purified E. coli MMR protein MutS. These findings make ssODN-directed gene modification particularly well suited for applications that require the evaluation of a large number of sequence variants with an easy selectable phenotype.

More about this publication

Proceedings of the National Academy of Sciences of the United States of America

Volume 113
Issue nr. 15
Pages 4122-7
Publication date 12-04-2016

Full text links

Publisher website (DOI) 10.1073/pnas.1513315113
Europe PubMed Central 26951689
Pubmed 26951689

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