阿达尔
RNA编辑
核糖核酸
生物
生物化学
寡核苷酸
引导RNA
计算生物学
核酸
胞苷
酶
DNA
基因组编辑
基因
清脆的
作者
Genliang Lu,Chikdu Shivalila,Prashant Monian,Hui Yu,Ian C. Harding,Stearne Briem,Michael Byrne,Alyse Faraone,Stephen Friend,Olivia Huth,Naoki Iwamoto,Tomomi Kawamoto,Jayakanthan Kumarasamy,Anthony Lamattina,Kenneth Longo,Leah McCarthy,Andrew McGlynn,Allison Molski,Qianli Pan,Tom Pu
摘要
Abstract AIMers are short, chemically modified oligonucleotides that induce A-to-I RNA editing through interaction with endogenous adenosine deaminases acting on RNA (ADAR) enzymes. Here, we describe the development of new AIMer designs with base, sugar and backbone modifications that improve RNA editing efficiency over our previous design. AIMers incorporating a novel pattern of backbone and 2′ sugar modifications support enhanced editing efficiency across multiple sequences. Further efficiency gains were achieved through incorporation of an N-3-uridine (N3U), in place of cytidine (C), in the ‘orphan base’ position opposite the edit site. Molecular modeling suggests that N3U might enhance ADAR catalytic activity by stabilizing the AIMer-ADAR interaction and potentially reducing the energy required to flip the target base into the active site. Supporting this hypothesis, AIMers containing N3U consistently enhanced RNA editing over those containing C across multiple target sequences and multiple nearest neighbor sequence combinations. AIMers combining N3U and the novel pattern of 2′ sugar chemistry and backbone modifications improved RNA editing both in vitro and in vivo. We provide detailed N3U synthesis methods and, for the first time, explore the impact of N3U and its analogs on ADAR-mediated RNA editing efficiency and targetable sequence space.
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