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生物正交化学偶联策略有助于研究 N-甲基腺苷和硫代尿嘧啶引导 RNA 修饰对 CRISPR 活性的影响。

Bio-Orthogonal Chemistry Conjugation Strategy Facilitates Investigation of N-methyladenosine and Thiouridine Guide RNA Modifications on CRISPR Activity.

机构信息

Department of Chemistry, University at Albany, SUNY, Albany, New York, USA.

出版信息

CRISPR J. 2022 Dec;5(6):787-798. doi: 10.1089/crispr.2022.0065. Epub 2022 Nov 15.

Abstract

The CRISPR-Cas9 system is an important genome editing tool that holds enormous potential toward the treatment of human genetic diseases. Clinical success of CRISPR technology is dependent on the incorporation of modifications into the single-guide RNA (sgRNA). However, chemical synthesis of modified sgRNAs, which are over 100 nucleotides in length, is difficult and low-yielding. We developed a conjugation strategy that utilized bio-orthogonal chemistry to efficiently assemble functional sgRNAs containing nucleobase modifications. The described approach entails the chemical synthesis of two shorter RNA oligonucleotides: a 31-mer containing tetrazine (Tz) group and a 70-mer modified with a -cyclooctene (TCO) moiety. The two oligonucleotides were conjugated to form functional sgRNAs. The two-component conjugation methodology was utilized to synthesize a library of sgRNAs containing nucleobase modifications such as N-methyladenosine (mA), N-methyladenosine (mA), 2-thiouridine (sU), and 4-thiouridine (sU). The impact of these RNA modifications on overall CRISPR activity were investigated and in Cas9-expressing HEK293T cells.

摘要

CRISPR-Cas9 系统是一种重要的基因组编辑工具,在治疗人类遗传疾病方面具有巨大的潜力。CRISPR 技术的临床成功取决于对单链引导 RNA(sgRNA)的修饰。然而,长度超过 100 个核苷酸的修饰 sgRNA 的化学合成既困难又产量低。我们开发了一种缀合策略,利用生物正交化学有效地组装含有核碱基修饰的功能性 sgRNA。所描述的方法需要化学合成两个较短的 RNA 寡核苷酸:一个含有四嗪(Tz)基团的 31 -mer 和一个用 -环辛烯(TCO)部分修饰的 70-mer。这两个寡核苷酸被连接形成功能性 sgRNA。使用两部分缀合方法合成了包含核碱基修饰(如 N6-甲基腺苷(mA)、N6-甲基腺苷(m6A)、2-硫代尿嘧啶(sU)和 4-硫代尿嘧啶(sU))的 sgRNA 文库。研究了这些 RNA 修饰对 Cas9 表达的 HEK293T 细胞中整体 CRISPR 活性的影响。

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本文引用的文献

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Tetrazine-Ligated CRISPR sgRNAs for Efficient Genome Editing.四嗪连接的 CRISPR sgRNAs 用于高效基因组编辑。
ACS Chem Biol. 2022 May 20;17(5):1045-1050. doi: 10.1021/acschembio.2c00116. Epub 2022 Apr 21.
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N Engl J Med. 2020 Dec 31;383(27):2603-2615. doi: 10.1056/NEJMoa2034577. Epub 2020 Dec 10.
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Trends Mol Med. 2020 Aug;26(8):713-715. doi: 10.1016/j.molmed.2020.06.001. Epub 2020 Jun 12.
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Naturally occurring modified ribonucleosides.天然存在的修饰核苷。
Wiley Interdiscip Rev RNA. 2020 Sep;11(5):e1595. doi: 10.1002/wrna.1595. Epub 2020 Apr 16.

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