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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Photophysical and structural properties of the fluorescent nucleobase analogues of the tricyclic cytosine (tC) family
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Photophysical and structural properties of the fluorescent nucleobase analogues of the tricyclic cytosine (tC) family

机译:三环胞嘧啶(tC)家族的荧光核碱基类似物的光物理和结构性质

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Fundamental insight into the unique fluorescence and nucleobase-mimicking properties of the fluorescent nucleobase analogues of the tC family is not only vital in explaining the behaviour of these probes in nucleic acid environments, but will also be profitable in the development of new and improved fluorescent base analogues. Here, temperature-dependent fluorescence quantum yield measurements are used to successfully separate and quantify the temperature-dependent and temperature-independent non-radiative excited-state decay processes of the three nucleobase analogues tC, tC~O and tC_(nitro); all of which are derivatives of a phenothiazine or phenoxazine tricyclic framework. These results strongly suggest that the non-radiative decay process dominating the fast deactivation of tC_(nitro) is an internal conversion of a different origin than the decay pathways of tC and tC~O. tC_(nitro) is reported to be fluorescent only in less dipolar solvents at room temperature, which is explained by an increase in excited-state dipole moment along the main non-radiative decay pathway, a suggestion that applies in the photophysical discussion of large polycyclic nitroaromatics in general. New insight into the ground and excited-state potential energy surfaces of the isolated tC bases is obtained by means of high level DFT and TDDFT calculations. The S_0 potential energy surfaces of tC and tC_(nitro) possess two global minima corresponding to geometries folded along the middle sulfur-nitrogen axis separated by an energy barrier of 0.05 eV as calculated at the B3LYP/6-311 + G(2d,p) level. The ground-state potential energy surface of tC~O is also predicted to be shallow along the bending coordinate but with an equilibrium geometry corresponding to the planar conformation of the tricyclic framework, which may explain some of the dissimilar properties of tC and tC~O in various confined (biological) environments. The S1 equilibrium geometries of all three base analogues are predicted to be planar. These results are discussed in the context of the tC bases positioned in double-stranded DNA scenarios.
机译:基本了解tC家族的荧光核碱基类似物的独特荧光和模仿核碱基的性质,不仅对解释这些探针在核酸环境中的行为至关重要,而且在开发新的和改良的荧光碱基方面也将是有益的类似物。在这里,使用温度相关的荧光量子产率测量来成功地分离和量化三个核碱基类似物tC,tC〜O和tC_(nitro)的温度相关和温度独立的非辐射激发态衰变过程。它们都是吩噻嗪或吩恶嗪三环骨架的衍生物。这些结果强烈表明,主导tC_(硝基)快速失活的非辐射衰变过程是与tC和tC〜O的衰变途径不同的内部转化。据报道,在室温下,tC_(硝基)仅在较少偶极溶剂中发荧光,这可以通过沿主要非辐射衰变途径的激发态偶极矩增加来解释,这一建议适用于大型多环化合物的光物理讨论硝基芳香族化合物。通过高水平的DFT和TDDFT计算,可以获得对孤立tC基底的基态和激发态势能面的新见解。 tC和tC_(硝基)的S_0势能面具有两个全局最小值,对应于沿着中硫-氮轴折叠的几何形状,由B3LYP / 6-311 + G(2d,p )级别。还预测了tC〜O的基态势能面沿弯曲坐标浅,但具有与三环框架的平面构型相对应的平衡几何结构,这可能解释了tC和tC〜O的某些不同性质在各种密闭(生物)环境中。预计所有三个碱基类似物的S1平衡几何形状均为平面。这些结果在双链DNA场景中位于tC碱基的背景下进行了讨论。

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