Lech Christopher J, Phan Anh Tuân, Michel-Beyerle Maria-Elisabeth, Voityuk Alexander A
Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University , 637371, Singapore.
J Phys Chem B. 2015 Mar 5;119(9):3697-705. doi: 10.1021/jp512767j. Epub 2015 Feb 25.
G-quadruplexes are four-stranded structures of nucleic acids that are formed from the association of guanine nucleobases into cyclical arrangements known as tetrads. G-quadruplexes are involved in a host of biological processes and are of interest in nanomaterial applications. However, not much is known about their electronic properties. In this paper, we analyze electronic excited states of G-quadruplexes using a combination of time-dependent DFT calculations and molecular dynamics simulations. We systematically consider experimentally observed arrangements of stacked guanine tetrads. The effects of structural features on exciton delocalization and photoinduced charge separation are explored using a quantitative analysis of the transition electron density. It is shown that collective coherent excitations shared between two guanine nucleobases dominate in the absorption spectrum of stacked G-tetrads. These excitations may also include a significant contribution of charge transfer states. Large variation in exciton localization is also observed between different structures with a general propensity toward localization between two bases. We reveal large differences in how charge separation occurs within different nucleobase arrangements, with some geometries favoring separation within a single tetrad and others favoring separation between tetrads. We also investigate the effects of the coordinating K(+) ion located in the central cavity of G-quadruplexes on the relative excited state properties of such systems. Our results demonstrate how the nature of excited states in G-quadruplexes depends on the nucleobase stacking geometry resulting from the mutual arrangement of guanine tetrads.
G-四链体是核酸的四链结构,由鸟嘌呤碱基相互结合形成称为四联体的环状排列。G-四链体参与了许多生物过程,并且在纳米材料应用中受到关注。然而,人们对其电子性质了解甚少。在本文中,我们结合含时密度泛函理论计算和分子动力学模拟来分析G-四链体的电子激发态。我们系统地考虑了实验观察到的堆叠鸟嘌呤四联体的排列方式。通过对跃迁电子密度的定量分析,探索了结构特征对激子离域和光诱导电荷分离的影响。结果表明,两个鸟嘌呤碱基之间共享的集体相干激发在堆叠G-四联体的吸收光谱中占主导地位。这些激发可能还包括电荷转移态的显著贡献。在不同结构之间也观察到激子局域化的巨大差异,总体上倾向于在两个碱基之间局域化。我们揭示了不同碱基排列中电荷分离发生方式的巨大差异,一些几何结构有利于在单个四联体中分离,而另一些则有利于在四联体之间分离。我们还研究了位于G-四链体中心腔中的配位K(+)离子对这类体系相对激发态性质的影响。我们的结果表明,G-四链体中激发态的性质如何取决于由鸟嘌呤四联体相互排列产生的碱基堆叠几何结构。