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Molecular mechanics of DNA bricks: in situ structure, mechanical properties and ionic conductivity

机译:DNA砖的分子力学:原位结构,力学性能和离子电导率

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Download video Transcript View all New J. Phys. video abstracts The DNA bricks method exploits self-assembly of short DNA fragments to produce custom three-dimensional objects with subnanometer precision. In contrast to DNA origami, the DNA brick method permits a variety of different structures to be realized using the same library of DNA strands. As a consequence of their design, however, assembled DNA brick structures have fewer interhelical connections in comparison to equivalent DNA origami structures. Although the overall shape of the DNA brick objects has been characterized and found to conform to the features of the target designs, the microscopic properties of DNA brick objects remain yet to be determined. Here, we use the all-atom molecular dynamics method to directly compare the structure, mechanical properties and ionic conductivity of DNA brick and DNA origami structures different only by internal connectivity of their consistituent DNA strands. In comparison to equivalent DNA origami structures, the DNA brick structures are found to be less rigid and less dense and have a larger cross-section area normal to the DNA helix direction. At the microscopic level, the junction in the DNA brick structures are found to be right-handed, similar to the structure of individual Holliday junctions (HJ) in solution, which contrasts with the left-handed structure of HJ in DNA origami. Subject to external electric field, a DNA brick plate is more leaky to ions than an equivalent DNA origami plate because of its lower density and larger cross-section area. Overall, our results indicate that the structures produced by the DNA brick method are fairly similar in their overall appearance to those created by the DNA origami method but are more compliant when subject to external forces, which likely is a consequence of their single crossover design.
机译:下载视频抄本查看全部New J. Phys。视频摘要DNA积木法利用短DNA片段的自组装来产生亚纳米精度的定制三维物体。与DNA折纸相比,DNA砖方法允许使用相同的DNA链文库实现多种不同的结构。然而,由于其设计的结果,与等效的DNA折纸结构相比,组装的DNA砖结构的螺旋间连接较少。尽管已鉴定出DNA砖块对象的整体形状并确定其符合目标设计的特征,但DNA砖块对象的微观特性仍有待确定。在这里,我们使用全原子分子动力学方法直接比较DNA砖和DNA折纸结构的结构,力学性能和离子电导率,这些折纸结构仅由其组成的DNA链的内部连通性不同。与等效的DNA折纸结构相比,发现DNA砖结构的刚性较小,密度较小,并且具有垂直于DNA螺旋方向的较大横截面积。在微观层面上,发现DNA砖结构中的连接是右手的,类似于溶液中单个霍利迪连接(HJ)的结构,这与DNA折纸中HJ的左手结构形成对比。受外部电场的影响,DNA砖板比同等的DNA折纸板更容易泄漏离子,因为它的密度较低且横截面积较大。总的来说,我们的结果表明,DNA砖方法产生的结构在外观上与DNA折纸方法创建的结构相当相似,但是在受到外力作用时更顺应,这可能是其单交叉设计的结果。

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