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首页> 外文期刊>Chemistry: A European journal >Electron attachment to hydrated oligonucleotide dimers: Guanylyl-3′,5′cytidine and cytidylyl-3′,5′-guanosine
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Electron attachment to hydrated oligonucleotide dimers: Guanylyl-3′,5′cytidine and cytidylyl-3′,5′-guanosine

机译:电子与水合寡核苷酸二聚体的连接:鸟苷基-3',5'胞苷和胞嘧啶-3',5'-鸟苷

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摘要

The dinucleoside phosphate deoxycytidylyl-3′,5′-deoxyguanosine (dCpdG) and deoxyguanylyl-3′,5′-deoxycytidine (dGpdC) systems are among the largest to be studied by reliable theoretical methods. Exploring electron attachment to these subunits of DNA single strands provides significant progress toward definitive predictions of the electron affinities of DNA single strands. The adiabatic electron affinities of the oligonucleotides are found to be sequence dependent. Deoxycytidine (dC) on the 5′ end, dCpdG, has larger adiabatic electron affinity (AEA, 0.90 eV) than dC on the 3′ end of the oligomer (dGpdC, 0.66 eV). The geometric features, molecular orbital analyses, and charge distribution studies for the radical anions of the cytidine-containing oligonucleotides demonstrate that the excess electron in these anionic systems is dominantly located on the cytosine nucleobase moiety. The π-stacking interaction between nucleobases G and C seems unlikely to improve the electron-capturing ability of the oligonucleotide dimers. The influence of the neighbor-ing base on the electron-capturing ability of cytosine should be attributed to the intensified proton accepting-donating interaction between the bases. The present investigation demonstrates that the vertical detachment energies (VDEs) of the radical anions of the oligonucleotides dGpdC and dCpdG are significantly larger than those of the corresponding nucleotides. Consequently, reactions with low activation barriers, such as those for O-C σ bond and N-glycosidic bond breakage, might be expected for the radical anions of the guanosine-cytosine mixed oligonucleotides.
机译:通过可靠的理论方法研究的最大的二核苷磷酸脱氧胞嘧啶-3',5'-脱氧鸟苷(dCpdG)和脱氧胍基-3',5'-脱氧胞苷(dGpdC)系统。探索与DNA单链这些亚基的电子连接为确定DNA单链电子亲和力提供了重大进展。发现寡核苷酸的绝热电子亲和力是序列依赖性的。 5'端的脱氧胞苷(dCpdG)比低聚物3'端的dC(dGpdC,0.66 eV)具有更大的绝热电子亲和力(AEA,0.90 eV)。含胞苷寡核苷酸的自由基阴离子的几何特征,分子轨道分析和电荷分布研究表明,这些阴离子系统中的过量电子主要位于胞嘧啶核苷碱基上。核碱基G和C之间的π堆积相互作用似乎不太可能提高寡核苷酸二聚体的电子捕获能力。相邻碱基对胞嘧啶电子捕获能力的影响应归因于碱基之间质子接受-供体相互作用的增强。本研究表明,寡核苷酸dGpdC和dCpdG的自由基阴离子的垂直脱离能(VDE)明显大于相应核苷酸的垂直脱离能。因此,对于鸟苷-胞嘧啶混合寡核苷酸的自由基阴离子,可以预期具有低活化势垒的反应,例如对于O-Cσ键和N-糖苷键断裂的那些。

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