Li Dawei, Chen Xiyu, Yan Rumeng, Jiang Zeshan, Zhou Bing, Lv Bei
Co-Innovation Center for Sustainable Forestry in Southern China, Key Laboratory of State Forestry and Grassland Administration on Subtropical Forest Biodiversity Conservation, College of Biology and the Environment, Nanjing Forestry University, Nanjing 210037, China.
Co-Innovation Center for Sustainable Forestry in Southern China, Key Laboratory of State Forestry and Grassland Administration on Subtropical Forest Biodiversity Conservation, College of Biology and the Environment, Nanjing Forestry University, Nanjing 210037, China.
Int J Biol Macromol. 2022 Dec 31;223(Pt A):281-289. doi: 10.1016/j.ijbiomac.2022.11.025. Epub 2022 Nov 8.
DNA topoisomerase I was found to be highly abundant in fast-proliferating tumor cells and is a potential target for anticancer therapy. A series of G-quadruplex-containing oligodeoxynucleotides (ODNs) were designed and used as inhibitors of DNA topoisomerase I. It was demonstrated that ODNs with G-quadruplexes can efficiently inhibit the supercoiled DNA relaxation reaction catalyzed by DNA topoisomerase I. Compared with the other conformations, the parallel propeller-type G-quadruplex was the most efficient DNA topoisomerase I inhibitor. Further studies revealed that integrating G-quadruplexes with duplexes to form quadruplex-duplex hybrids could significantly improve the inhibition efficiency. In addition, a circular ODN that consists of a G-quadruplex motif and DNA topoisomerase I binding site was synthesized and used as a DNA topoisomerase I inhibitor. The results showed that the particularly designed circular ODN displayed high inhibitory efficiency on the activity of DNA topoisomerase I with an IC value of 54.8 nM. Moreover, the circular ODN exhibited excellent thermal stability and nuclease resistance. Considering the low cytotoxicity of DNA-based biopharmaceuticals, the design strategy and results reported in this study may shed new light on nucleic acid-based DNA topoisomerase I inhibitor construction for potential anticancer drugs.
人们发现DNA拓扑异构酶I在快速增殖的肿瘤细胞中高度富集,是抗癌治疗的一个潜在靶点。设计了一系列含G-四链体的寡脱氧核苷酸(ODN),并将其用作DNA拓扑异构酶I的抑制剂。结果表明,具有G-四链体的ODN能够有效抑制DNA拓扑异构酶I催化的超螺旋DNA松弛反应。与其他构象相比,平行螺旋桨型G-四链体是最有效的DNA拓扑异构酶I抑制剂。进一步研究表明,将G-四链体与双链体整合形成四链体-双链体杂合体可显著提高抑制效率。此外,合成了一种由G-四链体基序和DNA拓扑异构酶I结合位点组成的环状ODN,并将其用作DNA拓扑异构酶I抑制剂。结果显示,特别设计的环状ODN对DNA拓扑异构酶I的活性表现出高抑制效率,IC值为54.8 nM。此外,环状ODN表现出优异的热稳定性和核酸酶抗性。鉴于基于DNA的生物药物细胞毒性低,本研究报道的设计策略和结果可能为基于核酸的DNA拓扑异构酶I抑制剂用于潜在抗癌药物的构建提供新的思路。