Sandin Peter, Wilhelmsson L Marcus, Lincoln Per, Powers Vicki E C, Brown Tom, Albinsson Bo
Physical Chemistry Section, Department of Chemistry and Bioscience, Chalmers University of Technology, SE-41296 Gothenburg, Sweden.
Nucleic Acids Res. 2005 Sep 7;33(16):5019-25. doi: 10.1093/nar/gki790. Print 2005.
The quantum yield of the fluorescent tricyclic cytosine analogue, 1,3-diaza-2-oxophenothiazine, tC, is high and virtually unaffected by incorporation into both single- and double-stranded DNA irrespective of neighbouring bases (0.17-0.24 and 0.16-0.21, respectively) and the corresponding fluorescence decay curves are all mono-exponential, properties that are unmatched by any base analogue so far. The fluorescence lifetimes increase when going from tC free in solution (3.2 ns) to single- and double-stranded DNA (on average 5.7 and 6.3 ns, respectively). The mono-exponential decays further support previous NMR results where it was found that tC has a well-defined position and geometry within the DNA helix. Furthermore, we find that the oxidation potential of tC is 0.4 V lower than for deoxyguanosine, the natural base with the lowest oxidation potential. This suggests that tC may be of interest in charge transfer studies in DNA as an electron hole acceptor. We also present a novel synthetic route to the phosphoramidite form of tC. The results presented here together with previous work show that tC is a very good C-analogue that induces minimal perturbation to the native structure of DNA. This makes tC unique as a fluorescent base analogue and is thus highly interesting in a range of applications for studying e.g. structure, dynamics and kinetics in nucleic acid systems.
荧光三环胞嘧啶类似物1,3 - 二氮杂 - 2 - 氧代吩噻嗪(tC)的量子产率很高,并且无论相邻碱基如何,其掺入单链和双链DNA时几乎不受影响(分别为0.17 - 0.24和0.16 - 0.21),相应的荧光衰减曲线均为单指数形式,这些特性是目前任何碱基类似物都无法比拟的。从溶液中的游离tC(3.2纳秒)到单链和双链DNA时,荧光寿命会增加(平均分别为5.7和6.3纳秒)。单指数衰减进一步支持了先前的核磁共振结果,即在DNA螺旋结构中tC具有明确的位置和几何形状。此外,我们发现tC的氧化电位比脱氧鸟苷(氧化电位最低的天然碱基)低0.4伏。这表明tC作为电子空穴受体,在DNA的电荷转移研究中可能具有重要意义。我们还提出了一种合成tC亚磷酰胺形式的新路线。本文给出的结果与先前的工作共同表明,tC是一种非常好的C类似物,对DNA的天然结构产生的扰动最小。这使得tC作为一种荧光碱基类似物具有独特性,因此在一系列用于研究核酸系统的结构、动力学和动力学等应用中极具吸引力。