RNA Therapeutics Institute, University of Massachusetts Medical School, 368 Plantation Street, Worcester, MA 01605, USA.
Department of Medicine, University of Massachusetts Medical School, Worcester, MA, USA.
Nucleic Acids Res. 2021 Dec 2;49(21):12069-12088. doi: 10.1093/nar/gkab1126.
Oligonucleotides is an emerging class of chemically-distinct therapeutic modalities, where extensive chemical modifications are fundamental for their clinical applications. Inter-nucleotide backbones are critical to the behaviour of therapeutic oligonucleotides, but clinically explored backbone analogues are, effectively, limited to phosphorothioates. Here, we describe the synthesis and bio-functional characterization of an internucleotide (E)-vinylphosphonate (iE-VP) backbone, where bridging oxygen is substituted with carbon in a locked stereo-conformation. After optimizing synthetic pathways for iE-VP-linked dimer phosphoramidites in different sugar contexts, we systematically evaluated the impact of the iE-VP backbone on oligonucleotide interactions with a variety of cellular proteins. Furthermore, we systematically evaluated the impact of iE-VP on RNA-Induced Silencing Complex (RISC) activity, where backbone stereo-constraining has profound position-specific effects. Using Huntingtin (HTT) gene causative of Huntington's disease as an example, iE-VP at position 6 significantly enhanced the single mismatch discrimination ability of the RISC without negative impact on silencing of targeting wild type htt gene. These findings suggest that the iE-VP backbone can be used to modulate the activity and specificity of RISC. Our study provides (i) a new chemical tool to alter oligonucleotide-enzyme interactions and metabolic stability, (ii) insight into RISC dynamics and (iii) a new strategy for highly selective SNP-discriminating siRNAs.
寡核苷酸是一类新兴的化学治疗药物,其中广泛的化学修饰对于它们的临床应用至关重要。核苷酸间的骨架对于治疗性寡核苷酸的行为至关重要,但临床上探索的骨架类似物实际上仅限于硫代磷酸酯。在这里,我们描述了一种核苷酸间(E)-乙烯膦酸酯(iE-VP)骨架的合成和生物功能特性,其中桥接氧被锁定的立体构型中的碳取代。在优化不同糖环境下 iE-VP 连接二聚体亚磷酰胺酸的合成途径后,我们系统地评估了 iE-VP 骨架对各种细胞蛋白与寡核苷酸相互作用的影响。此外,我们系统地评估了 iE-VP 对 RNA 诱导沉默复合物(RISC)活性的影响,其中骨架的立体约束具有深远的位置特异性影响。我们以导致亨廷顿病的亨廷顿基因(HTT)为例,iE-VP 在第 6 位显著增强了 RISC 的单错配区分能力,而对靶向野生型 htt 基因的沉默没有负面影响。这些发现表明,iE-VP 骨架可用于调节 RISC 的活性和特异性。我们的研究提供了(i)一种改变寡核苷酸-酶相互作用和代谢稳定性的新化学工具,(ii)对 RISC 动力学的深入了解,以及(iii)一种用于高度选择性 SNP 区分 siRNA 的新策略。