| Literature DB >> 31036929 |
Wen Shen1, Cheryl L De Hoyos1, Michael T Migawa1, Timothy A Vickers1, Hong Sun1, Audrey Low1, Thomas A Bell1, Meghdad Rahdar1, Swagatam Mukhopadhyay1, Christopher E Hart1, Melanie Bell1, Stan Riney1, Susan F Murray1, Sarah Greenlee1, Rosanne M Crooke1, Xue-Hai Liang1, Punit P Seth1, Stanley T Crooke2.
Abstract
The molecular mechanisms of toxicity of chemically modified phosphorothioate antisense oligonucleotides (PS-ASOs) are not fully understood. Here, we report that toxic gapmer PS-ASOs containing modifications such as constrained ethyl (cEt), locked nucleic acid (LNA) and 2'-O-methoxyethyl (2'-MOE) bind many cellular proteins with high avidity, altering their function, localization and stability. We show that RNase H1-dependent delocalization of paraspeckle proteins to nucleoli is an early event in PS-ASO toxicity, followed by nucleolar stress, p53 activation and apoptotic cell death. Introduction of a single 2'-O-methyl (2'-OMe) modification at gap position 2 reduced protein-binding, substantially decreasing hepatotoxicity and improving the therapeutic index with minimal impairment of antisense activity. We validated the ability of this modification to generally mitigate PS-ASO toxicity with more than 300 sequences. Our findings will guide the design of PS-ASOs with optimal therapeutic profiles.Entities:
Mesh:
Substances:
Year: 2019 PMID: 31036929 DOI: 10.1038/s41587-019-0106-2
Source DB: PubMed Journal: Nat Biotechnol ISSN: 1087-0156 Impact factor: 54.908