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ADAR介导的腺苷到肌苷RNA编辑的结构视角。

Structural perspectives on adenosine to inosine RNA editing by ADARs.

作者信息

Fisher Andrew J, Beal Peter A

机构信息

Department of Chemistry, University of California, Davis, One Shields Ave, Davis, CA 95616, USA.

Department of Molecular and Cellular Biology, University of California, Davis, One Shields Ave, Davis, CA 95616, USA.

出版信息

Mol Ther Nucleic Acids. 2024 Jul 19;35(3):102284. doi: 10.1016/j.omtn.2024.102284. eCollection 2024 Sep 10.

Abstract

Adenosine deaminases acting on RNA (ADARs) are enzymes that catalyze the hydrolytic deamination of adenosine to inosine. The editing feature of ADARs has garnered much attention as a therapeutic tool to repurpose ADARs to correct disease-causing mutations at the mRNA level in a technique called site-directed RNA editing (SDRE). Administering a short guide RNA oligonucleotide that hybridizes to a mutant sequence forms the requisite dsRNA substrate, directing ADARs to edit the desired adenosine. However, much is still unknown about ADARs' selectivity and sequence-specific effects on editing. Atomic-resolution structures can help provide additional insight to ADARs' selectivity and lead to novel guide RNA designs. Indeed, recent structures of ADAR domains have expanded our understanding on RNA binding and the base-flipping catalytic mechanism. These efforts have enabled the rational design of improved ADAR guide strands and advanced the therapeutic potential of the SDRE approach. While no full-length structure of any ADAR is known, this review presents an exposition of the structural basis for function of the different ADAR domains, focusing on human ADAR2. Key insights are extrapolated to human ADAR1, which is of substantial interest because of its widespread expression in most human tissues.

摘要

作用于RNA的腺苷脱氨酶(ADARs)是催化腺苷水解脱氨生成肌苷的酶。作为一种治疗工具,ADARs的编辑特性备受关注,该技术称为定点RNA编辑(SDRE),可利用ADARs在mRNA水平纠正致病突变。给予与突变序列杂交的短指导RNA寡核苷酸可形成所需的双链RNA底物,引导ADARs编辑所需的腺苷。然而,关于ADARs的选择性以及编辑的序列特异性影响,仍有许多未知之处。原子分辨率结构有助于深入了解ADARs的选择性,并催生新的指导RNA设计。事实上,最近ADAR结构域的结构扩展了我们对RNA结合和碱基翻转催化机制的理解。这些努力实现了对改进的ADAR指导链的合理设计,并提升了SDRE方法的治疗潜力。虽然目前尚不清楚任何ADAR的全长结构,但本综述阐述了不同ADAR结构域功能的结构基础,重点关注人类ADAR2。关键见解被外推至人类ADAR1,由于其在大多数人类组织中广泛表达,ADAR1备受关注。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1031/11334849/1b9b28bbae7a/fx1.jpg

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