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Binary control of enzymatic cleavage of DNA origami by structural antideterminants

机译:结构性决定簇对DNA折纸酶解的二元控制

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摘要

Controlling DNA nanostructure interaction with protein is essential in developing nanodevices with programmable function, reactivity, and stability for biological and medical applications. Here, we show that the sequence-specific action of restriction endonucleases towards sharp triangular or rectangular DNA origami exhibits a novel, binary ‘on/off’ behaviour, as canonical recognition sites are either essentially fully reactive, or strongly resistant to enzymatic cutting. Moreover, introduction of structural defects in the sharp triangle can activate an otherwise unreactive site, with a site-to-defect distance of ∼50 nm. We argue that site reactivity is dependent upon programmable, mechanical coupling in the two-dimensional DNA origami, with specific structural elements, including DNA nicks and branches proximal to the sites that can function as negative(anti) determinants of reactivity. Empirically modelling the constraints to DNA degrees of freedom associated with each recognition site in the sharp triangle can rationalize the pattern of suppressed reactivity towards nine restriction endonucleases, in substantial agreement with the experimental results. These results provide a basis for a predictive understanding of structure-reactivity correlates of specific DNA nanostructures, which will allow a better understanding of the behaviour of nucleic acids under nanoscale confinement, as well as in the rational design of functional nanodevices based on self-assembling nucleic acids.
机译:控制DNA纳米结构与蛋白质的相互作用对于开发具有可编程功能,反应性和稳定性的生物和医学应用纳米设备至关重要。在这里,我们显示限制性核酸内切酶对尖锐的三角形或矩形DNA折纸的序列特异性作用表现出新颖的二进制“开/关”行为,因为规范识别位点基本上是完全反应性的,或者是对酶切反应的强抗性。此外,在尖锐的三角形中引入结构缺陷可以激活原本就没有活性的位点,位点到缺陷的距离约为50 nm。我们认为,位点反应性取决于二维DNA折纸中的可编程机械耦合,具有特定的结构元素,包括DNA缺口和邻近位点的分支,这些位点可作为反应性的负(反)决定因素。凭经验对与锐角三角形中每个识别位点相关的DNA自由度的约束条件进行建模,可以使对九种限制性核酸内切酶反应性的抑制模式合理化,与实验结果基本一致。这些结果为特定DNA纳米结构的结构反应性相关性的预测性理解提供了基础,这将有助于更好地了解纳米级限制下核酸的行为,以及基于自组装的功能性纳米器件的合理设计。核酸。

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