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Isoguanine and 5‐Methyl‐Isocytosine Bases,In Vitro and In Vivo
Authors:Dr Shrinivas Dumbre  Dr Valérie Pezo  Guy Schepers  Prof Vitor B Pinheiro  Prof Eveline Lescrinier  Prof Philipp Holliger  Dr Philippe Marlière  Prof Piet Herdewijn
Institution:1. Medicinal Chemistry, Rega Institute for Medical Research, KU Leuven, Minderbroedersstraat 10, 3000 Leuven (Belgium);2. ISSB, Génopole genavenir 6, Equipe Xénome, 5 rue Henri Desbruères 91030 Evry Cedex (France);3. CEA, DSV, IG, Genoscope, 2 rue Gaston Crémieux 91057 Evry Cedex (France);4. Institute of Structural and Molecular Biology, University College, University of London, Darwin Building, Gower Street, London, WC1E 6BT (UK);5. MRC Laboratory of Molecular Biology, Francis Crick Avenue, Cambridge Biomedical Campus, Cambridge CB2 0QH (UK)
Abstract:The synthesis, base‐pairing properties and in vitro and in vivo characteristics of 5‐methyl‐isocytosine (isoCMe) and isoguanine (isoG) nucleosides, incorporated in an HNA(h) (hexitol nucleic acid)–DNA(d) mosaic backbone, are described. The required h‐isoG phosphoramidite was prepared by a selective deamination as a key step. As demonstrated by Tm measurements the hexitol sugar showed slightly better mismatch discrimination against dT. The d‐isoG base mispairing follows the order T>G>C while the h‐isoG base mispairing follows the order G>C>T. The h‐ and d‐isoCMe bases mainly mispair with G. Enzymatic incorporation experiments show that the hexitol backbone has a variable effect on selectivity. In the enzymatic assays, isoG misincorporates mainly with T, and isoCMe misincorporates mainly with A. Further analysis in vivo confirmed the patterns of base‐pair interpretation for the deoxyribose and hexitol isoCMe/isoG bases in a cellular context, through incorporation of the bases into plasmidic DNA. Results in vivo demonstrated that mispairing and misincorporation was dependent on the backbone scaffold of the base, which indicates rational advances towards orthogonality.
Keywords:HNA  isoG  polymerase  nucleosides  XNA plasmid
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