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AT Base Pair Anions versus (9-Methyl-A)(1-MethyI-T) Base Pair Anions

机译:AT碱基对阴离子与(9-甲基-A)(1-MethyI-T)碱基对阴离子

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摘要

The anionic base pairs of adenine and thymine,(AT)~-,and 9-methyladenine and 1 -methylthymine,(MAMT)~,have been investigated both theoretically and experimentally in a complementary,synergistic study.Calculations on (AT)~- found that it had undergone a barrier-free proton transfer (BFPT) similar to that seen in other dimer anion systems and that its structural configuration was neither Watson-Crick (WC) nor Hoogsteen (HS).The vertical detachment energy (VDE) of (AT)~- was determined by anion photoelectron spectroscopy and found to be in agreement with the VDE value predicted by theory for the BFPT mechanism.An AT pair in DNA is structurally immobilized into the WC configuration,in part,by being bonded to the sugars of the double helix.This circumstance was mimicked by methylating the sites on both A and T where these sugars would have been tied,viz.,9-methyladenine and 1-methylthymine.Calculations found no BFPT in (MAMT)~- and a resulting (MAMT)~- configuration that was either HS or WC,with the configurations differing in stability by ca.2 kcal/mol.The photoelectron spectrum of (MAMT)~-occurred at a completely different electron binding energy than had (AT)~-.Moreover,the VDE value of (MAMT)- was in agreement with that predicted by theory.The configuration of (MAMT)~- and its lack of electron-induced proton transfer are inter-related.While there may be other pathways for electron-induced DNA alterations,BFPT in the WC/HS configurations of (AT)~- is not feasible.
机译:在互补的协同研究中,从理论和实验上研究了腺嘌呤和胸腺嘧啶(AT)〜-,9-甲基腺嘌呤和1-甲基胸腺嘧啶(MAMT)〜的阴离子碱基对。(AT)〜-的计算发现它经历了与其他二聚阴离子系统类似的无障碍质子转移(BFPT),并且其结构构型既不是Watson-Crick(WC)也不是Hoogsteen(HS)。 (AT)〜-是通过阴离子光电子能谱测定的,发现与BFPT机理的理论预测的VDE值相符.DNA中的AT对在结构上被固定为WC构型,部分是通过键合到这种情况是通过在A和T上将这些糖连接的位点甲基化来模拟的,即9-甲基腺嘌呤和1-甲基胸腺嘧啶。计算发现(MAMT)中没有BFPT。结果(MAMT)〜-配置为HS或WC (MAMT)的光电子能谱与(AT)〜-的电子结合能完全不同。(MAMT)的VDE值(MAMT)〜-的构型与缺乏电子诱导的质子转移是相互关联的。虽然WC / HS中可能存在其他途径引起电子诱导的DNA改变,BFPT (AT)〜-的配置不可行。

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  • 来源
    《Journal of the American Chemical Society》 |2005年第17期|p.6443-6450|共8页
  • 作者单位

    Contribution from the Department of Chemistry,Johns Hopkins University,Baltimore,Maryland 21218,Department of Chemistry,University of Gdansk,Sobieskiego 18,80-952 Gdansk,Poland,Institute of Organic Chemistry and Biochemistry,The Academy of Sciences o;

    Contribution from the Department of Chemistry,Johns Hopkins University,Baltimore,Maryland 21218,Department of Chemistry,University of Gdansk,Sobieskiego 18,80-952 Gdansk,Poland,Institute of Organic Chemistry and Biochemistry,The Academy of Sciences o;

    Contribution from the Department of Chemistry,Johns Hopkins University,Baltimore,Maryland 21218,Department of Chemistry,University of Gdansk,Sobieskiego 18,80-952 Gdansk,Poland,Institute of Organic Chemistry and Biochemistry,The Academy of Sciences o;

    Contribution from the Department of Chemistry,Johns Hopkins University,Baltimore,Maryland 21218,Department of Chemistry,University of Gdansk,Sobieskiego 18,80-952 Gdansk,Poland,Institute of Organic Chemistry and Biochemistry,The Academy of Sciences o;

    Contribution from the Department of Chemistry,Johns Hopkins University,Baltimore,Maryland 21218,Department of Chemistry,University of Gdansk,Sobieskiego 18,80-952 Gdansk,Poland,Institute of Organic Chemistry and Biochemistry,The Academy of Sciences o;

    Contribution from the Department of Chemistry,Johns Hopkins University,Baltimore,Maryland 21218,Department of Chemistry,University of Gdansk,Sobieskiego 18,80-952 Gdansk,Poland,Institute of Organic Chemistry and Biochemistry,The Academy of Sciences o;

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  • 正文语种 eng
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