Biaggne Austin, Kim Young C, Melinger Joseph S, Knowlton William B, Yurke Bernard, Li Lan
Micron School of Materials Science and Engineering, Boise State University Boise ID 83725 USA
Materials Science and Technology Division, U.S. Naval Research Laboratory Washington DC 20375 USA.
RSC Adv. 2022 Oct 4;12(43):28063-28078. doi: 10.1039/d2ra05045e. eCollection 2022 Sep 28.
Dye aggregates and their excitonic properties are of interest for their applications to organic photovoltaics, non-linear optics, and quantum information systems. DNA scaffolding has been shown to be effective at promoting the aggregation of dyes in a controllable manner. Specifically, isolated DNA Holliday junctions have been used to achieve strongly coupled cyanine dye dimers. However, the structural properties of the dimers and the DNA, as well as the role of Holliday junction isomerization are not fully understood. To study the dynamics of cyanine dimers in DNA, molecular dynamics simulations were carried out for adjacent and transverse dimers attached to Holliday junctions in two different isomers. It was found that dyes attached to adjacent strands in the junction exhibit stronger dye-DNA interactions and larger inter-dye separations compared to transversely attached dimers, as well as end-to-end arrangements. Transverse dimers exhibit lower inter-dye separations and more stacked configurations. Furthermore, differences in Holliday junction isomer are analyzed and compared to dye orientations. For transverse dyes exhibiting the smaller inter-dye separations, excitonic couplings were calculated and shown to be in agreement with experiment. Our results suggested that dye attachment locations on DNA Holliday junctions affect dye-DNA interactions, dye dynamics, and resultant dye orientations which can guide the design of DNA-templated cyanine dimers with desired properties.
染料聚集体及其激子特性因其在有机光伏、非线性光学和量子信息系统中的应用而备受关注。DNA支架已被证明能有效地以可控方式促进染料的聚集。具体而言,分离的DNA霍利迪连接体已被用于实现强耦合的花菁染料二聚体。然而,二聚体和DNA的结构特性以及霍利迪连接体异构化的作用尚未完全了解。为了研究DNA中花菁二聚体的动力学,对附着在两种不同异构体的霍利迪连接体上的相邻和横向二聚体进行了分子动力学模拟。研究发现,与横向连接的二聚体相比,连接体中附着在相邻链上的染料表现出更强的染料-DNA相互作用和更大的染料间间距,以及端对端排列。横向二聚体表现出更低的染料间间距和更多的堆叠构型。此外,分析并比较了霍利迪连接体异构体的差异与染料取向。对于染料间间距较小的横向染料,计算了激子耦合并显示与实验结果一致。我们的结果表明,DNA霍利迪连接体上的染料附着位置会影响染料-DNA相互作用、染料动力学以及由此产生的染料取向,这可以指导设计具有所需特性的DNA模板花菁二聚体。