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bioRxiv · 10.1101/2022.06.29.498088

Chemical engineering of therapeutic siRNAs for allele-specific gene silencing in vivo in CNS

Abstract

Small interfering RNAs (siRNAs) are a new class of drugs, exhibiting sequence-driven, potent, and sustained silencing of gene expression in vivo. We recently demonstrated that siRNA chemical architectures can be optimized to provide efficient delivery to the CNS. Many genetically-defined neurodegenerative disorders are autosomal dominant favoring selective silencing of the mutant allele. In some cases, successful targeting of the mutant allele requires targeting of a single nucleotide polymorphism (SNP) heterozygosity. Using Huntingtons disease as a model, we demonstrate allele-specific RNAi-based silencing of gene expression in vivo and in neurons differentiated from HD patient-derived iPSCs. A series of in vitro screens, with chemical and thermodynamic optimization, identified compounds with >50-fold selectivity for the mutant HD-causing allele, based on a single nucleotide difference. The optimized compound exhibits selective silencing of mutant huntingtin (HTT) protein in patient derived cells and throughout the HD mouse brain, providing a demonstration of SNP-based allele-specific RNAi silencing of gene expression in vivo in the CNS. The ability to target a disease-causing allele using RNAi-based therapies could be applied to a wide range of dominant CNS disorders, where maintenance of wild-type expression is essential.

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BibTeXRIS

Conroy, F., Miller, R., Alterman, J. F., Hassler, M. R., Echeverria, D., Godinho, B. M. D. C., Knox, E. G., Sapp, E., Sousa, J., Yamada, K., Mahmood, F., Boudi, A., Kegel-Gleason, K., DiFiglia, M., Aronin, N., Khvorova, A., Pfister, E. L.. 2022-07-02. Chemical engineering of therapeutic siRNAs for allele-specific gene silencing in vivo in CNS. https://doi.org/10.1101/2022.06.29.498088

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