Garvan Institute of Medical Research, Darlinghurst, Sydney, NSW 2010, Australia.
St Vincent's Clinical School, Faculty of Medicine, University of New South Wales, Kensington, Sydney, NSW 2010, Australia.
Nucleic Acids Res. 2023 Aug 25;51(15):7736-7748. doi: 10.1093/nar/gkad592.
Nucleic acids not only form the basis of heredity, but are increasingly a source of novel nano-structures, -devices and drugs. This has spurred the development of chemically modified alternatives (xeno nucleic acids (XNAs)) comprising chemical configurations not found in nature to extend their chemical and functional scope. XNAs can be evolved into ligands (XNA aptamers) that bind their targets with high affinity and specificity. However, detailed investigations into structural and functional aspects of XNA aptamers have been limited. Here we describe a detailed structure-function analysis of LYS-S8-19, a 1',5'-anhydrohexitol nucleic acid (HNA) aptamer to hen egg-white lysozyme (HEL). Mapping of the aptamer interaction interface with its cognate HEL target antigen revealed interaction epitopes, affinities, kinetics and hot-spots of binding energy similar to protein ligands such as anti-HEL-nanobodies. Truncation analysis and molecular dynamics (MD) simulations suggest that the HNA aptamer core motif folds into a novel and not previously observed HNA tertiary structure, comprising non-canonical hT-hA-hT/hT-hT-hT triplet and hG4-quadruplex structures, consistent with its recognition by two different G4-specific antibodies.
核酸不仅构成了遗传的基础,而且越来越成为新型纳米结构、-器件和药物的来源。这刺激了化学修饰替代物(异种核酸(XNAs))的发展,包括自然界中不存在的化学结构,以扩展其化学和功能范围。XNAs 可以进化成配体(XNA 适体),与它们的靶标具有高亲和力和特异性结合。然而,对 XNA 适体的结构和功能方面的详细研究受到限制。在这里,我们描述了对鸡卵清溶菌酶(HEL)的 1',5'-脱水己糖醇核酸(HNA)适体 LYS-S8-19 的详细结构-功能分析。该适体与同源 HEL 靶抗原相互作用界面的作图揭示了相互作用表位、亲和力、动力学和结合能热点,与抗 HEL-纳米抗体等蛋白质配体相似。截断分析和分子动力学(MD)模拟表明,HNA 适体核心基序折叠成一种新型的、以前未观察到的 HNA 三级结构,包括非典型的 hT-hA-hT/hT-hT-hT 三联体和 hG4-四联体结构,与两种不同的 G4 特异性抗体的识别一致。