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Exploration of intramolecular split G-quadruplex and its analytical applications

机译:分子内分裂G-四链体的探索及其分析应用

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摘要

Distinct from intermolecular split G-quadruplex (Inter-SG), intramolecular split G-quadruplex (Intra-SG) which could be generated in a DNA spacer-inserted G-quadruplex strand has not been systematically explored. Not only is it essential for the purpose of simplicity of DNA-based bioanalytical applications, but also it will give us hints how to design split G-quadruplex-based system. Herein, comprehensive information is provided about influences of spacer length and split mode on the formation of Intra-SG, how to adjust its thermodynamic stability, and selection of optimal Intra-SG for bioanalysis. For instances, non-classical Intra-SG (e.g. 2:10, 4:8 and 5:7) displays lower stability than classical split strands (3:9, 6:6 and 9:3), which is closely related to integrity of consecutive guanine tract; as compared to regular Intra-SG structures, single-thymine capped ones have reduced melting temperature, providing an effective approach to adjustment of stability. It is believed that the disclosed rules in this study will contribute to the effective application of split G-quadruplex in the field of DNA technology in the future.
机译:与分子间分裂的G-四链体(Inter-SG)不同,分子内分裂的G-四链体(Intra-SG)可能在插入DNA间隔子的G-四链体链中产生,这一点尚未得到系统地研究。它不仅对于简化基于DNA的生物分析应用的目的是必不可少的,而且还将为我们提供提示,说明如何设计基于分离的G-四链体的系统。本文提供了有关间隔物长度和分裂模式对Intra-SG形成的影响,如何调整其热力学稳定性以及选择用于生物分析的最佳Intra-SG的综合信息。例如,非经典Intra-SG(例如2:10、4:8和5:7)显示的稳定性低于经典分裂链(3:9、6:6和9:3),这与完整性密切相关连续鸟嘌呤束与常规的Intra-SG结构相比,单胸腺嘧啶加帽的结构降低了熔化温度,为调节稳定性提供了有效的方法。可以相信,这项研究中公开的规则将有助于将来在DNA技术领域中有效地应用分裂G-四链体。

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