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Investigating discovery strategies and pharmacological properties of stereodefined phosphorodithioate LNA gapmers

The introduction of sulfur into the phosphate linkage of chemically synthesized oligonucleotides creates the stereocenters on phosphorus atoms. Researchers have valued the nature of backbone stereochemistry and early on investigated drug properties for the individual stereocenters in dimers or short...

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Detalles Bibliográficos
Autores principales: Duschmalé, Jörg, Schäublin, Adrian, Funder, Erik, Schmidt, Steffen, Kiełpiński, Łukasz J., Nymark, Helle, Jensen, Klaus, Koch, Troels, Duschmalé, Martina, Koller, Erich, Møller, Marianne Ravn, Schadt, Simone, Husser, Christophe, Brink, Andreas, Sewing, Sabine, Minz, Tanja, Wengel, Jesper, Bleicher, Konrad, Li, Meiling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Gene & Cell Therapy 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9271985/
https://www.ncbi.nlm.nih.gov/pubmed/35860384
http://dx.doi.org/10.1016/j.omtn.2022.06.010
Descripción
Sumario:The introduction of sulfur into the phosphate linkage of chemically synthesized oligonucleotides creates the stereocenters on phosphorus atoms. Researchers have valued the nature of backbone stereochemistry and early on investigated drug properties for the individual stereocenters in dimers or short oligomers. Only very recently, it has become possible to synthesize fully stereodefined antisense oligonucleotides in good yield and purity. Non-bridging phosphorodithioate (PS(2)) introduces second sulfur into the phosphorothioate linkage to remove the chirality of phosphorus atom. Here, we describe the application of symmetrical non-bridging PS(2) linkages in the context of stereodefined locked nucleic acids (LNAs) antisense oligonucleotides with the goal of reducing chiral complexity and, ultimately, resulting in single molecules. In addition, we propose a rather simple strategy to rapidly identify stereodefined gapmers, combining PS(2) and a preferred stereochemistry motif (RSSR), which supports RNase-H-mediated target knockdown. Pharmacological efficacy and metabolic stability are investigated systematically using ApoB as a target sequence, where in vivo data correlate well to what is observed in vitro.