Key Laboratory of High Performance Polymer Material and Technology of Ministry of Education, State Key Laboratory of Coordination Chemistry and Collaborative Innovation Center of Chemistry for Life Sciences, Department of Polymer Science and Engineering, School of Chemistry and Chemical Engineering, Nanjing University , Nanjing 210023, China.
ACS Nano. 2016 Aug 23;10(8):7485-92. doi: 10.1021/acsnano.6b02067. Epub 2016 Jul 18.
The dynamics of DNA hybridization is very important in DNA-programmable nanoparticle crystallization. Here, coarse-grained molecular dynamics is utilized to explore the structural and dynamic properties of DNA hybridizations for a self-complementary DNA-directed nanoparticle self-assembly system. The hexagonal close-packed (HCP) and close-packed face-centered cubic (FCC) ordered structures are identified for the systems of different grafted DNA chains per nanoparticle, which are in good agreement with the experimental results. Most importantly, the dynamic crystallization processes of DNA hybridizations are elucidated by virtue of the mean square displacement, the percentage of hybridizations, and the lifetime of DNA bonds. The lifetime can be modeled by the DNA dehybridization, which has an exponential form. The lifetime of DNA bonds closely depends on the temperature. A suitable temperature for the DNA-nanoparticle crystallization is obtained in the work. Moreover, a too large volume fraction hinders the self-assembly process due to steric effects. This work provides some essential information for future design of nanomaterials.
DNA 杂交的动力学在 DNA 可编程纳米粒子结晶中非常重要。在这里,利用粗粒分子动力学来探索自互补 DNA 导向的纳米粒子自组装系统中 DNA 杂交的结构和动态特性。对于不同接枝 DNA 链数目的纳米粒子系统,确定了六方密堆积(HCP)和密堆积面心立方(FCC)有序结构,这与实验结果非常吻合。最重要的是,通过均方位移、杂交百分比和 DNA 键的寿命阐明了 DNA 杂交的动态结晶过程。DNA 解杂交具有指数形式,可以对 DNA 键的寿命进行建模。DNA 键的寿命与温度密切相关。在这项工作中,获得了适合 DNA-纳米粒子结晶的温度。此外,由于空间位阻效应,过大的体积分数会阻碍自组装过程。这项工作为未来的纳米材料设计提供了一些重要信息。