DNA nanotechnology takes advantage of the predictability of DNA interactions to build complex DNA-based functional nanoscale structures. However, when DNA functional and responsive units that are based on non-canonical DNA interactions are employed it becomes quite challenging to predict, understand and control their thermodynamics. In response to this limitation, here we demonstrate the use of isothermal urea titration experiments to estimate the free energy involved in a set of DNA-based systems ranging from unimolecular DNA-based nanoswitches to more complex DNA folds (e.g. aptamers) and nanodevices. We propose here a set of fitting equations that allow to analyze the urea titration curves of these DNA responsive units based on Watson-Crick and non-canonical interactions (stem-loop, G-quadruplex, triplex structures) and to correctly estimate their relative folding and binding free energy values under different experimental conditions. The results described herein will pave the way toward the use of urea titration experiments in the field of DNA nanotechnology to achieve easier and more reliable thermodynamic characterization of DNA-based functional responsive units. More generally, our results will be of general utility to characterize other complex supramolecular systems based on different biopolymers.

译文

DNA纳米技术利用DNA相互作用的可预测性来构建复杂的基于DNA的功能性纳米级结构。但是,当使用基于非规范DNA相互作用的DNA功能和响应单元时,预测,理解和控制其热力学变得非常具有挑战性。针对这一限制,在这里,我们演示了使用等温尿素滴定实验来估计一组基于DNA的系统中涉及的自由能,这些系统从基于单分子DNA的纳米开关到更复杂的DNA折叠 (例如适体) 和纳米设备。我们在这里提出了一组拟合方程,允许基于Watson-Crick和非规范相互作用 (茎环,G-四链,三链结构) 分析这些DNA响应单元的尿素滴定曲线,并正确估计它们在不同实验条件下的相对折叠和结合自由能值。本文所述的结果将为在DNA纳米技术领域中使用尿素滴定实验铺平道路,以实现基于DNA的功能响应单元的更容易且更可靠的热力学表征。更一般地说,我们的结果将普遍用于表征基于不同生物聚合物的其他复杂超分子系统。

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