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在特定位置掺入 5'-甲基化 DNA 可增强 gapmer ASO 的治疗效果。

Site-specific incorporation of 5'-methyl DNA enhances the therapeutic profile of gapmer ASOs.

机构信息

Ionis Pharmaceuticals Inc., 2855 Gazelle Court, Carlsbad, CA 92010, USA.

出版信息

Nucleic Acids Res. 2021 Feb 26;49(4):1828-1839. doi: 10.1093/nar/gkab047.

Abstract

We recently showed that site-specific incorporation of 2'-modifications or neutral linkages in the oligo-deoxynucleotide gap region of toxic phosphorothioate (PS) gapmer ASOs can enhance therapeutic index and safety. In this manuscript, we determined if introducing substitution at the 5'-position of deoxynucleotide monomers in the gap can also enhance therapeutic index. Introducing R- or S-configured 5'-Me DNA at positions 3 and 4 in the oligodeoxynucleotide gap enhanced the therapeutic profile of the modified ASOs suggesting a different positional preference as compared to the 2'-OMe gap modification strategy. The generality of these observations was demonstrated by evaluating R-5'-Me and R-5'-Ethyl DNA modifications in multiple ASOs targeting HDAC2, FXI and Dynamin2 mRNA in the liver. The current work adds to a growing body of evidence that small structural changes can modulate the therapeutic properties of PS ASOs and ushers a new era of chemical optimization with a focus on enhancing the therapeutic profile as opposed to nuclease stability, RNA-affinity and pharmacokinetic properties. The 5'-methyl DNA modified ASOs exhibited excellent safety and antisense activity in mice highlighting the therapeutic potential of this class of nucleic acid analogs for next generation ASO designs.

摘要

我们最近表明,在毒性硫代磷酸酯 (PS) 间隙寡核苷酸 gapmer ASO 的寡脱氧核苷酸间隙区域中特异性地掺入 2'修饰或中性键,可以提高治疗指数和安全性。在本手稿中,我们确定在 gap 中的脱氧核苷酸单体的 5'位置引入取代是否也可以提高治疗指数。在寡脱氧核苷酸 gap 中第 3 和第 4 位引入 R-或 S-构型的 5'-Me DNA 增强了修饰 ASO 的治疗谱,这表明与 2'-OMe gap 修饰策略相比,具有不同的位置偏好。通过在多个靶向 HDAC2、FXI 和 Dynamin2 mRNA 的 ASO 中评估 R-5'-Me 和 R-5'-Ethyl DNA 修饰,证明了这些观察结果的普遍性。目前的工作增加了越来越多的证据表明,小的结构变化可以调节 PS ASO 的治疗特性,并开创了一个新的化学优化时代,重点是增强治疗谱,而不是核酸酶稳定性、RNA 亲和力和药代动力学特性。5'-甲基 DNA 修饰的 ASO 在小鼠中表现出优异的安全性和反义活性,突出了这类核酸类似物在下一代 ASO 设计中的治疗潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b00e/7913697/2ee2dc7571ed/gkab047fig1.jpg

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