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首页> 外文期刊>Journal of Molecular Structure. Theochem: Applications of Theoretical Chemistry to Organic, Inorganic and Biological Problems >Oxidative damage to DNA: Theoretical determination of ionization potential of deoxyriboguanosine (dG)-deoxyribocytidine (dC) and proton transfer in its cation
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Oxidative damage to DNA: Theoretical determination of ionization potential of deoxyriboguanosine (dG)-deoxyribocytidine (dC) and proton transfer in its cation

机译:对DNA的氧化损伤:脱氧核糖鸟苷(dG)-脱氧核糖胞苷(dC)的电离势及其阳离子中质子转移的理论测定

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The geometries of the DNA nucleoside pairs between 2'-deoxyriboguanosine (dG) and 2'-deoxyribocytidine (dC) and its cation (dGdC(+)) were fully optimized using density functional methods. The ionization of an electron from dGdC results in remarkable changes to the three hydrogen bonding distances, the O center dot center dot center dot H4-N4 distance increasing by 0.160 angstrom and the N1-H1 center dot center dot center dot N3 distance and the N2-H2 center dot center dot center dot O2 distance decreasing by 0.116 angstrom and 1.234 angstrom, respectively. The ionization potential of the dGdC pair was studied to reveal the correct trends of adiabatic ionization potential (AIP) under the influence of the additional components to the individual bases. The result of a positive charge in terms of structural variations, energetic changes, and charge distribution were explored. The AIP of dGdC is predicted to be positive (6.48 eV), and exhibits a substantial increase compared with those of the corresponding bases G and C and the nucleic acid base pair GC. The effects of pairing and the addition of the sugar moiety on the AIP are well described as the summation of the individual influences. The influence of the pairing on the G is comparable to that of the addition of 2'-deoxyribose. The singlet charge is mainly located on the deoxyriboguanosine moiety in the cationic dGdC pair. The negative vertical electron attachment energy (-5.98 eV) for dGdC(+) suggests the cationic state is unstable with respect to electron attachment vertically. A large vertical ionization potential (VIP 7.05 eV) has been determined for the neutral dGdC nucleoside pair. The proton-transfer process between N1 of the guanine and N3 of the cytosine can occur in the GC cation and dGdC cation, and this process becomes easier when the sugar moiety linked on the base pair. Therefore, one may expect that the cationic dGdC nucleoside pair before and after proton transfer should be exist simultaneously.
机译:使用密度泛函方法完全优化了2'-脱氧核糖鸟苷(dG)和2'-脱氧核糖胞苷(dC)及其阳离子(dGdC(+))之间的DNA核苷对的几何形状。电子从dGdC离子化导致三个氢键合距离发生显着变化,O中心点中心点中心点H4-N4距离增加0.160埃,N1-H1中心点中心点中心点N3距离和N2 -H 2中心点中心点中心点O 2的距离分别减小了0.116埃和1.234埃。研究了dGdC对的电离势,以揭示在各个碱基对其他组分的影响下,绝热电离势(AIP)的正确趋势。研究了正电荷在结构变化,能量变化和电荷分布方面的结果。预测dGdC的AIP为阳性(6.48 eV),并且与相应的碱基G和C和核酸碱基对GC的AIP相比,显示出大幅增加。配对和糖部分在AIP上的添加的影响已很好地描述为各个影响的总和。配对对G的影响与添加2'-脱氧核糖的影响相当。单线态电荷主要位于阳离子dGdC对中的脱氧核糖鸟苷部分。 dGdC(+)的负垂直电子附着能(-5.98 eV)表明,阳离子状态相对于垂直电子附着是不稳定的。对于中性dGdC核苷对,已经确定了较大的垂直电离势(VIP 7.05 eV)。鸟嘌呤的N1和胞嘧啶的N3之间的质子转移过程可能发生在GC阳离子和dGdC阳离子中,当糖部分连接在碱基对上时,该过程变得更容易。因此,可以预期质子转移之前和之后的阳离子dGdC核苷对应同时存在。

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