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自动化 5'-三磷酸寡核苷酸的平行合成及化学修饰的 5'-三磷酸小干扰 RNA 的制备。

Automated parallel synthesis of 5'-triphosphate oligonucleotides and preparation of chemically modified 5'-triphosphate small interfering RNA.

机构信息

Department of Drug Discovery, Alnylam Pharmaceuticals, 300 Third Street, Cambridge, MA 02142, USA.

出版信息

Bioorg Med Chem. 2013 Feb 1;21(3):722-32. doi: 10.1016/j.bmc.2012.11.043. Epub 2012 Dec 3.

Abstract

A fully automated chemical method for the parallel and high-throughput solid-phase synthesis of 5'-triphosphate and 5'-diphosphate oligonucleotides is described. The desired full-length oligonucleotides were first constructed using standard automated DNA/RNA solid-phase synthesis procedures. Then, on the same column and instrument, efficient implementation of an uninterrupted sequential cycle afforded the corresponding unmodified or chemically modified 5'-triphosphates and 5'-diphosphates. The method was readily translated into a scalable and high-throughput synthesis protocol compatible with the current DNA/RNA synthesizers yielding a large variety of unique 5'-polyphosphorylated oligonucleotides. Using this approach, we accomplished the synthesis of chemically modified 5'-triphosphate oligonucleotides that were annealed to form small-interfering RNAs (ppp-siRNAs), a potentially interesting class of novel RNAi therapeutic tools. The attachment of the 5'-triphosphate group to the passenger strand of a siRNA construct did not induce a significant improvement in the in vitro RNAi-mediated gene silencing activity nor a strong specific in vitro RIG-I activation. The reported method will enable the screening of many chemically modified ppp-siRNAs, resulting in a novel bi-functional RNAi therapeutic platform.

摘要

一种全自动化学方法,用于 5'-三磷酸酯和 5'-二磷酸酯寡核苷酸的平行和高通量固相合成。首先使用标准的自动化 DNA/RNA 固相合成程序构建所需的全长寡核苷酸。然后,在同一根柱子和仪器上,高效地执行不间断的顺序循环,得到相应的未修饰或化学修饰的 5'-三磷酸酯和 5'-二磷酸酯。该方法很容易转化为可扩展的高通量合成方案,与当前的 DNA/RNA 合成仪兼容,可生成各种独特的 5'-多磷酸化寡核苷酸。使用这种方法,我们完成了化学修饰的 5'-三磷酸酯寡核苷酸的合成,这些寡核苷酸退火形成小干扰 RNA(ppp-siRNA),这是一类有潜力的新型 RNAi 治疗工具。在 siRNA 构建体的过客链上连接 5'-三磷酸基团并没有显著提高体外 RNAi 介导的基因沉默活性,也没有强烈的体外 RIG-I 特异性激活。所报道的方法将能够筛选许多化学修饰的 ppp-siRNA,从而形成一种新型的双功能 RNAi 治疗平台。

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