Department of Chemistry and Biochemistry, Concordia University, 7141 Sherbrooke St. W., Montréal, Québec, H4B 1R6, Canada.
Chembiochem. 2023 May 2;24(9):e202300068. doi: 10.1002/cbic.202300068. Epub 2023 Apr 4.
The introduction of chemical modifications on the nucleic acid scaffold has allowed for the progress of antisense oligonucleotides (ASOs) in the clinic for the treatment of a variety of disorders. In contribution to the repertoire of gene-silencing nucleic acid modifications, herein we report the synthesis and incorporation of C5-propynyl arabinouridine (araU ) and arabinocytidine (araC ) into mixed-base ASOs containing a pyrimidine core. Substitution of the core with araU and araC resulted in stabilization of the duplex formed with RNA but not with DNA. Similar results were obtained with ASOs bearing phosphorothioate linkages or methoxyethyl (MOE) wings in a gapmer design. All modified ASOs were compatible with E. coli RNase H mediated degradation of target RNA. Substitution of DNA for araU and araC in the central portion of a gapmer with MOE wings demonstrated improved nuclease resistance. These results suggest C5-modified arabinonucleic acids may serve as a potential chemical modification for therapeutic ASOs.
在核酸支架上引入化学修饰,使得反义寡核苷酸(ASO)在临床上得以用于治疗多种疾病方面取得了进展。在丰富基因沉默核酸修饰库的过程中,我们在此报告了将 C5-丙炔基阿拉伯呋喃糖核苷酸(araU)和阿拉伯胞嘧啶(araC)掺入含有嘧啶核心的混合碱基 ASO 中的合成和整合。用 araU 和 araC 替代核心会导致与 RNA 形成的双链体稳定,但与 DNA 形成的双链体不稳定。带有硫代磷酸酯键或甲氧基乙氧基(MOE)侧翼的 ASO 在 gapmer 设计中也得到了类似的结果。所有修饰的 ASO 都与大肠杆菌 RNase H 介导的靶 RNA 降解兼容。用 MOE 侧翼的 gapmer 中 DNA 取代 araU 和 araC 的中心部分,证明了其对核酸酶的抗性得到了提高。这些结果表明,C5 修饰的阿拉伯糖核酸可能成为治疗性 ASO 的一种潜在化学修饰。