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Effects of Design Choices on the Stiffness of Wireframe DNA Origami Structures

机译:设计选择对线虫DNA折纸结构刚度的影响

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摘要

DNA origami is a powerful method for the creation of 3D nanoscale objects, and in the past few years, interest in wireframe origami designs has increased due to their potential for biomedical applications. In DNA wireframe designs, the construction material is double-stranded DNA, which has a persistence length of around 50 nm. In this work, we study the effect of various design choices on the stiffness versus final size of nanoscale wireframe rods, given the constraints on origami designs set by the DNA origami scaffold size. An initial theoretical analysis predicts two competing mechanisms limiting rod stiffness, whose balancing results in an optimal edge length. For small edge lengths, the bending of the rod's overall frame geometry is the dominant factor, while the flexibility of individual DNA edges has a greater contribution at larger edge lengths. We evaluate our design choices through simulations and experiments and find that the stiffness of the structures increases with the number of sides in the cross-section polygon and that there are indications of an optimal member edge length. We also ascertain the effect of nicked DNA edges on the stiffness of the wireframe rods and demonstrate that ligation of the staple breakpoint nicks reduces the observed flexibility. Our simulations also indicate that the persistence length of wireframe DNA structures significantly decreases with increasing monovalent salt concentration.
机译:DNA Origami是一个强大的方法,用于创建3D纳米级对象,并且在过去几年中,由于它们对生物医学应用的潜力,对线框折纸设计的兴趣增加。在DNA线框设计中,施工材料是双链DNA,其持续长度约为50nm。在这项工作中,鉴于DNA折纸脚手架尺寸设定的折纸设计的约束,我们研究各种设计选择对纳米级线棒棒的刚度与最终尺寸的影响。初始理论分析预测两个限制杆刚度的竞争机制,其平衡导致最佳边缘长度。对于小边长,杆的整体框架几何形状的弯曲是主导因素,而各个DNA边缘的灵活性在更大的边缘长度下具有更大的贡献。我们通过模拟和实验评估我们的设计选择,并发现结构的刚度随横截面多边形的侧面的数量而增加,并且存在最佳成员边缘长度的指示。我们还确定切口DNA边缘对线圈棒的刚度的影响,并证明了钉断点缺口的连接降低了观察到的柔韧性。我们的模拟还表明,随着单价盐浓度的增加,线框DNA结构的持久性长度显着降低。

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