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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Significant role of the DNA backbone in mediating the transition origin of electronic excitations of B-DNA - implication from long range corrected TDDFT and quantified NTO analysis
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Significant role of the DNA backbone in mediating the transition origin of electronic excitations of B-DNA - implication from long range corrected TDDFT and quantified NTO analysis

机译:DNA骨架在介导B-DNA电子激发的跃迁起源中的重要作用-长期校正的TDDFT和定量NTO分析的意义

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We systematically investigate the possible complex transition origin of electronic excitations of giant molecular systems by using the recently proposed QNTO analysis [J.-H. Li, J.-D. Chai, G. Y. Guo and M. Hayashi, Chem. Phys. Lett., 2011, 514, 362.] combined with long-range corrected TDDFT calculations. Thymine (Thy) related excitations of a B-DNA biomolecule are then studied as examples, where the model systems have been constructed by extracting from the perfect or an X-ray crystal (PDB code 3BSE) B-DNA structure with at least one Thy included. In the first part, we consider the systems composed of a core molecular segment (e.g. Thy, or di-Thy) and a surrounding physical/chemical environment of interest (e.g. backbone, adjacent stacking nucleobases) in gas phase and examine how the excitation properties of the core vary in response to the environment. We find that the orbitals contributed by the DNA backbone and surrounding nucleobases often participate in a transition of Thy-related excitations affecting their composition, absorption energy, and oscillator strength. A vast number of strongly backbone-orbital involved excitations are also found at an absorption wavelength below ~180 nm predicted by TD-ωB97X. In the second part, we take into account geometrically induced variation of the excitation properties of various B-DNA segments, e.g. di-Thy, dTpdT etc., obtained from different sources (ideal and 3BSE). It is found that the transition origin of several Thy-related excitations of these segments is sensitive to slight conformational variations, suggesting that DNA with thermal motions may from time to time exhibit very different photo-induced physical and/or chemical processes.
机译:我们通过使用最近提出的QNTO分析来系统地研究大分子系统电子激发的可能复杂跃迁起源[J.-H。李建德Chai,G。Y. Guo和M. Hayashi,化学。物理Lett。,2011,514,362.]与远程校正的TDDFT计算相结合。然后以B-DNA生物分子的胸腺嘧啶(Thy)相关激发为例进行研究,其中通过从具有至少一个Thy的完美或X射线晶体(PDB代码3BSE)中提取B-DNA结构来构建模型系统。包括在内。在第一部分中,我们考虑了由核心分子片段(例如Thy或di-Thy)和周围感兴趣的气相物理/化学环境(例如主链,相邻堆积的核碱基)组成的系统,并研究了激发特性核心的数量随环境的变化而变化。我们发现,由DNA主链和周围核碱基贡献的轨道经常参与Thy相关激发的跃迁,从而影响其组成,吸收能和振荡器强度。在TD-ωB97X预测的〜180 nm以下的吸收波长处也发现了许多强烈的主干-轨道相关激发。在第二部分中,我们考虑了各种B-DNA片段的激发特性的几何诱导变化,例如从不同来源(理想和3BSE)获得的di-Thy,dTpdT等。已发现这些片段的数个与Thy相关的激发的跃迁起源对轻微的构象变化敏感,表明具有热运动的DNA可能会不时呈现出非常不同的光诱导物理和/或化学过程。

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