论文标题
纳米级平面性调节DNA水凝胶的弹性
Nanostars planarity modulates the elasticity of DNA hydrogels
论文作者
论文摘要
与网络和框架的经典刚度问题相比,预期由DNA纳米级(DNAN)制成的水凝胶的弹性特性有望在很大程度上取决于其构件的精确几何形状。但是,目前无法通过实验确定DNAN形状。可以保留DNA纳米级的正确几何形状并考虑到最近实验中观察到的大量特性的计算粗粒模型可能会提供缺失的见解。在这项研究中,我们进行元动力学模拟,以获得使用OxDNA模型模拟的三臂DNA纳米级的首选构型。基于这些结果,我们引入了一个可以自我组装成复杂的三维渗透网络的纳米仪的粗粒粒子计算模型。我们将两个系统与不同的设计进行比较,其中使用了平面或非平面纳米级。结构和网络分析揭示了两种情况的完全不同的特征,从而导致了两种对比的弹性特性。在非平面的情况下,分子的迁移率更大,这与平衡中的绿色kubo模拟测得的粘度较低一致。据我们所知,这是将DNAN的几何形状与DNA水凝胶的整体流变特性联系起来的第一部作品,并且可能会为未来基于DNA的材料的设计提供信息。
In analogy with classic rigidity problems of networks and frames, the elastic properties of hydrogels made of DNA nanostars (DNAns) are expected to strongly depend on the precise geometry of their building blocks. However, it is currently not possible to determine DNAns shape experimentally. Computational coarse-grained models that can retain the correct geometry of DNA nanostars and account for the bulk properties observed in recent experiments could provide missing insights. In this study, we perform metadynamics simulations to obtain the preferred configuration of three-armed DNA nanostars simulated with the oxDNA model. Based on these results we introduce a coarse-grained computational model of nanostars that can self assemble into complex three dimensional percolating networks. We compare two systems with different designs, in which either planar or non-planar nanostars are used. Structural and network analysis reveal completely different features for the two cases, leading to two contrasting elastic properties. The mobility of molecules is larger in the non-planar case, which is consistent with a lower viscosity measured from Green-Kubo simulations in equilibrium. To the best of our knowledge, this is the first work connecting the geometry of DNAns with the bulk rheological properties of DNA hydrogels and may inform the design of future DNA based materials.