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Base pairing involving artificial bases in vitro and in vivo

Herein we report the synthesis of N(8)-glycosylated 8-aza-deoxyguanosine (N(8)-8-aza-dG) and 8-aza-9-deaza-deoxyguanosine (N(8)-8-aza-9-deaza-dG) nucleotides and their base pairing properties with 5-methyl-isocytosine (d-isoC(Me)), 8-amino-deoxyinosine (8-NH(2)-dI), 1-N-methyl-8-amino-deoxyinosine (...

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Autores principales: Bande, Omprakash, Braddick, Darren, Agnello, Stefano, Jang, Miyeon, Pezo, Valérie, Schepers, Guy, Rozenski, Jef, Lescrinier, Eveline, Marlière, Philippe, Herdewijn, Piet
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5954848/
https://www.ncbi.nlm.nih.gov/pubmed/29896368
http://dx.doi.org/10.1039/c5sc03474d
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author Bande, Omprakash
Braddick, Darren
Agnello, Stefano
Jang, Miyeon
Pezo, Valérie
Schepers, Guy
Rozenski, Jef
Lescrinier, Eveline
Marlière, Philippe
Herdewijn, Piet
author_facet Bande, Omprakash
Braddick, Darren
Agnello, Stefano
Jang, Miyeon
Pezo, Valérie
Schepers, Guy
Rozenski, Jef
Lescrinier, Eveline
Marlière, Philippe
Herdewijn, Piet
author_sort Bande, Omprakash
collection PubMed
description Herein we report the synthesis of N(8)-glycosylated 8-aza-deoxyguanosine (N(8)-8-aza-dG) and 8-aza-9-deaza-deoxyguanosine (N(8)-8-aza-9-deaza-dG) nucleotides and their base pairing properties with 5-methyl-isocytosine (d-isoC(Me)), 8-amino-deoxyinosine (8-NH(2)-dI), 1-N-methyl-8-amino-deoxyinosine (1-Me-8-NH(2)-dI), 7,8-dihydro-8-oxo-deoxyinosine (8-Oxo-dI), 7,8-dihydro-8-oxo-deoxyadenosine (8-Oxo-dA), and 7,8-dihydro-8-oxo-deoxyguanosine (8-Oxo-dG), in comparison with the d-isoC(Me):d-isoG artificial genetic system. As demonstrated by T(m) measurements, the N(8)-8-aza-dG:d-isoC(Me) base pair formed less stable duplexes as the C:G and d-isoC(Me):d-isoG pairs. Incorporation of 8-NH(2)-dI versus the N(8)-8-aza-dG nucleoside resulted in a greater reduction in T(m) stability, compared to d-isoC(Me):d-isoG. Insertion of the methyl group at the N(1) position of 8-NH(2)-dI did not affect duplex stability with N(8)-8-aza-dG, thus suggesting that the base paring takes place through Hoogsteen base pairing. The cellular interpretation of the nucleosides was studied, whereby a lack of recognition or mispairing of the incorporated nucleotides with the canonical DNA bases indicated the extent of orthogonality in vivo. The most biologically orthogonal nucleosides identified included the 8-amino-deoxyinosines (1-Me-8-NH(2)-dI and 8-NH(2)-dI) and N(8)-8-aza-9-deaza-dG. The 8-oxo modifications mimic oxidative damage ahead of cancer development, and the impact of the MutM mediated recognition of these 8-oxo-deoxynucleosides was studied, finding no significant impact in their in vivo assay.
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spelling pubmed-59548482018-06-12 Base pairing involving artificial bases in vitro and in vivo Bande, Omprakash Braddick, Darren Agnello, Stefano Jang, Miyeon Pezo, Valérie Schepers, Guy Rozenski, Jef Lescrinier, Eveline Marlière, Philippe Herdewijn, Piet Chem Sci Chemistry Herein we report the synthesis of N(8)-glycosylated 8-aza-deoxyguanosine (N(8)-8-aza-dG) and 8-aza-9-deaza-deoxyguanosine (N(8)-8-aza-9-deaza-dG) nucleotides and their base pairing properties with 5-methyl-isocytosine (d-isoC(Me)), 8-amino-deoxyinosine (8-NH(2)-dI), 1-N-methyl-8-amino-deoxyinosine (1-Me-8-NH(2)-dI), 7,8-dihydro-8-oxo-deoxyinosine (8-Oxo-dI), 7,8-dihydro-8-oxo-deoxyadenosine (8-Oxo-dA), and 7,8-dihydro-8-oxo-deoxyguanosine (8-Oxo-dG), in comparison with the d-isoC(Me):d-isoG artificial genetic system. As demonstrated by T(m) measurements, the N(8)-8-aza-dG:d-isoC(Me) base pair formed less stable duplexes as the C:G and d-isoC(Me):d-isoG pairs. Incorporation of 8-NH(2)-dI versus the N(8)-8-aza-dG nucleoside resulted in a greater reduction in T(m) stability, compared to d-isoC(Me):d-isoG. Insertion of the methyl group at the N(1) position of 8-NH(2)-dI did not affect duplex stability with N(8)-8-aza-dG, thus suggesting that the base paring takes place through Hoogsteen base pairing. The cellular interpretation of the nucleosides was studied, whereby a lack of recognition or mispairing of the incorporated nucleotides with the canonical DNA bases indicated the extent of orthogonality in vivo. The most biologically orthogonal nucleosides identified included the 8-amino-deoxyinosines (1-Me-8-NH(2)-dI and 8-NH(2)-dI) and N(8)-8-aza-9-deaza-dG. The 8-oxo modifications mimic oxidative damage ahead of cancer development, and the impact of the MutM mediated recognition of these 8-oxo-deoxynucleosides was studied, finding no significant impact in their in vivo assay. Royal Society of Chemistry 2016-02-01 2015-11-10 /pmc/articles/PMC5954848/ /pubmed/29896368 http://dx.doi.org/10.1039/c5sc03474d Text en This journal is © The Royal Society of Chemistry 2016 https://creativecommons.org/licenses/by-nc/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Bande, Omprakash
Braddick, Darren
Agnello, Stefano
Jang, Miyeon
Pezo, Valérie
Schepers, Guy
Rozenski, Jef
Lescrinier, Eveline
Marlière, Philippe
Herdewijn, Piet
Base pairing involving artificial bases in vitro and in vivo
title Base pairing involving artificial bases in vitro and in vivo
title_full Base pairing involving artificial bases in vitro and in vivo
title_fullStr Base pairing involving artificial bases in vitro and in vivo
title_full_unstemmed Base pairing involving artificial bases in vitro and in vivo
title_short Base pairing involving artificial bases in vitro and in vivo
title_sort base pairing involving artificial bases in vitro and in vivo
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5954848/
https://www.ncbi.nlm.nih.gov/pubmed/29896368
http://dx.doi.org/10.1039/c5sc03474d
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