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首页> 外文期刊>Journal of the American Chemical Society >Electron Tunneling Pathways and Role of Adenine in Repair of Cyclobutane Pyrimidine Dimer by DNA Photolyase
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Electron Tunneling Pathways and Role of Adenine in Repair of Cyclobutane Pyrimidine Dimer by DNA Photolyase

机译:电子光通道和腺嘌呤在DNA光裂解酶修复环丁烷嘧啶二聚体中的作用

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摘要

Electron tunneling pathways in enzymes are critical to their catalytic efficiency. Through electron tunneling, photolyase, a photoenzyme, splits UV-induced cyclobutane pyrimidine dimer into two normal bases. Here, we report our systematic characterization and analyses of photoinitiated three electron transfer processes and cyclobutane ring splitting by following the entire dynamical evolution during enzymatic repair with femtosecond resolution. We observed the complete dynamics of the reactants, all intermediates and final products, and determined their reaction time scales. Using (deoxy)uracil and thymine as dimer substrates, we unambiguously determined the electron tunneling pathways for the forward electron transfer to initiate repair and for the final electron return to restore the active cofactor and complete the catalytic photocycle. Significantly, we found that the adenine moiety of the unusual bent flavin cofactor is essential to mediating all electron-transfer dynamics through a superexchange mechanism, leading to a delicate balance of time scales. The cyclobutane ring splitting takes tens of picoseconds, while electron-transfer dynamics all occur on a longer time scale. The active-site structural integrity, unique electron tunneling pathways, and the critical role of adenine ensure the synergy of these elementary steps in this complex photorepair machinery to achieve maximum repair efficiency which is close to unity. Finally, we used the Marcus electron-transfer theory to evaluate all three electron-transfer processes and thus obtained their reaction driving forces (free energies), reorganization energies, and electronic coupling constants, concluding that the forward and futile back-electron transfer is in the normal region and that the final electron return of the catalytic cycle is in the inverted region.
机译:酶中的电子隧穿途径对其催化效率至关重要。通过电子隧穿,光裂解酶(一种光酶)将紫外线诱导的环丁烷嘧啶二聚体分成两个正常碱基。在这里,我们报告我们的系统表征和光引发的三个电子转移过程和环丁烷环分裂的分析,方法是通过飞秒分辨率进行酶修复过程中的整个动力学演变。我们观察了反应物,所有中间体和最终产物的完整动力学,并确定了它们的反应时间尺度。使用(脱氧)尿嘧啶和胸腺嘧啶作为二聚体底物,我们明确确定了电子隧穿路径,用于正向电子转移以启动修复,最终电子返回以还原活性辅因子并完成催化光循环。重要的是,我们发现不寻常的弯曲黄素辅因子的腺嘌呤部分对于通过超交换机制介导所有电子转移动力学至关重要,从而导致时间尺度的微妙平衡。环丁烷环分裂需要数十皮秒的时间,而电子转移动力学都在较长的时间尺度上发生。活性位点的结构完整性,独特的电子隧穿路径以及腺嘌呤的关键作用确保了这些复杂的光修复机械中这些基本步骤的协同作用,以实现接近于一体的最大修复效率。最后,我们使用马库斯电子传输理论评估了所有三个电子传输过程,从而获得了它们的反应驱动力(自由能),重组能和电子耦合常数,从而得出正电子和无能的反向电子转移是在正常区域,并且催化循环的最终电子返回位于反向区域。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第19期|p.8104-8114|共11页
  • 作者单位

    Department of Physics, Department of Chemistry and Biochemistry, and Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210, United States;

    Department of Physics, Department of Chemistry and Biochemistry, and Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210, United States;

    Department of Physics, Department of Chemistry and Biochemistry, and Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210, United States;

    Department of Physics, Department of Chemistry and Biochemistry, and Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210, United States;

    Department of Physics, Department of Chemistry and Biochemistry, and Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210, United States;

    Department of Physics, Department of Chemistry and Biochemistry, and Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210, United States;

    Department of Biochemistry and Biophysics, University of North Carolina School of Medicine, Chapel Hill, North Carolina 27599,United States;

    Department of Physics, Department of Chemistry and Biochemistry, and Programs of Biophysics, Chemical Physics, and Biochemistry, The Ohio State University, Columbus, Ohio 43210, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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