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动态DNA双螺旋的激子态:交替的dCdG序列

Exciton states of dynamic DNA double helices: alternating dCdG sequences.

作者信息

Emanuele Emanuela, Zakrzewska Krystyna, Markovitsi Dimitra, Lavery Richard, Millié Philippe

机构信息

Laboratoire Francis Perrin CEA/DSM/DRECAM/SPAM-CNRS URA 2453, CEA Saclay, 91191 Gif-sur-Yvette, France.

出版信息

J Phys Chem B. 2005 Aug 25;109(33):16109-18. doi: 10.1021/jp051833k.

Abstract

The present communication deals with the excited states of the alternating DNA oligomer (dCdG)5.(dCdG)5 which correspond to the UV absorption band around 260 nm. Their properties are studied in the frame of the exciton theory, combining molecular dynamics simulations and quantum chemistry data. It is shown that the dipolar coupling undergoes important variations with the site and the helix geometry. In contrast, the energy of the monomer transitions within the double helix is not sensitive to the local environment. It is thus considered to be distributed over Gaussian curves whose maximum and width are derived from the experimental absorption spectra of nucleosides in aqueous solution. The influence of the spectral width on the excited state delocalization and the absorption spectra is much stronger than that of the oligomer plasticity. About half of the excited states are delocalized over at least two bases. Many of them result from the mixing of different monomer states and extend on both strands. The trends found in the simulated spectra, when going from non-interacting monomers to the duplex, are in agreement with experimental observations. Conformational changes enhance the diversity of the states which can be populated upon excitation at a given energy. The states with larger spatial extent are located close to the maximum of the absorption spectrum.

摘要

本通讯涉及交替DNA寡聚物(dCdG)5.(dCdG)5的激发态,其对应于260nm左右的紫外吸收带。结合分子动力学模拟和量子化学数据,在激子理论框架下研究了它们的性质。结果表明,偶极耦合随位点和螺旋几何结构发生重要变化。相比之下,双螺旋内单体跃迁的能量对局部环境不敏感。因此,它被认为分布在高斯曲线上,其最大值和宽度由核苷在水溶液中的实验吸收光谱得出。光谱宽度对激发态离域和吸收光谱的影响远强于寡聚物可塑性的影响。约一半的激发态至少在两个碱基上离域。其中许多是由不同单体状态的混合产生的,并在两条链上延伸。从非相互作用单体到双链体时模拟光谱中发现的趋势与实验观察结果一致。构象变化增强了在给定能量激发时可占据的状态的多样性。空间范围较大的状态位于吸收光谱的最大值附近。

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