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Structurally constrained phosphonate internucleotide linkage impacts oligonucleotide-enzyme interaction,and modulates siRNA activity and allele specificity
Authors:Ken Yamada  Samuel Hildebrand  Sarah M Davis  Rachael Miller  Faith Conroy  Ellen Sapp  Jillian Caiazzi  Julia F Alterman  Loic Roux  Dimas Echeverria  Matthew R Hassler  Edith L Pfister  Marian DiFiglia  Neil Aronin  Anastasia Khvorova
Institution:RNA Therapeutics Institute, University of Massachusetts Medical School, 368 Plantation Street, Worcester, MA, 01605, USA;Department of Medicine, University of Massachusetts Medical School, Worcester, MA, USA;Department of Neurology, Harvard Medical School and MassGeneral Institute for Neurodegenerative Disease, Charlestown, MA, USA;Program in Molecular Medicine, University of Massachusetts Medical School, Worcester, MA, USA
Abstract:Oligonucleotides is an emerging class of chemically-distinct therapeutic modalities, where extensive chemical modifications are fundamental for their clinical applications. Inter-nucleotide backbones are critical to the behaviour of therapeutic oligonucleotides, but clinically explored backbone analogues are, effectively, limited to phosphorothioates. Here, we describe the synthesis and bio-functional characterization of an internucleotide (E)-vinylphosphonate (iE-VP) backbone, where bridging oxygen is substituted with carbon in a locked stereo-conformation. After optimizing synthetic pathways for iE-VP-linked dimer phosphoramidites in different sugar contexts, we systematically evaluated the impact of the iE-VP backbone on oligonucleotide interactions with a variety of cellular proteins. Furthermore, we systematically evaluated the impact of iE-VP on RNA-Induced Silencing Complex (RISC) activity, where backbone stereo-constraining has profound position-specific effects. Using Huntingtin (HTT) gene causative of Huntington''s disease as an example, iE-VP at position 6 significantly enhanced the single mismatch discrimination ability of the RISC without negative impact on silencing of targeting wild type htt gene. These findings suggest that the iE-VP backbone can be used to modulate the activity and specificity of RISC. Our study provides (i) a new chemical tool to alter oligonucleotide-enzyme interactions and metabolic stability, (ii) insight into RISC dynamics and (iii) a new strategy for highly selective SNP-discriminating siRNAs.
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