Voityuk Alexander A, Davis William B
Institució Catalana de Recerca I Estudis Avançats and Institute of Computational Chemistry, Universitat de Girona, 17071 Girona, Spain.
J Phys Chem B. 2007 Mar 22;111(11):2976-85. doi: 10.1021/jp066470i. Epub 2007 Mar 1.
The dynamics of long-range hole transport (HT) through DNA are critically dependent on the relative energies of guanine radical cation states. Electrostatic contacts with protein fragments and changes in the secondary structure of the DNA helix are expected to directly influence the stability of a guanine radical cation. This expectation is especially relevant when considering DNA HT in the eukaryotic nucleus, where DNA is condensed into nucleosome core particles (NCPs), the fundamental building blocks of chromatin. Using quantum-chemical calculations, we consider how the electrostatic interactions between the DNA nucleobases and the surrounding protein and water atoms and the structural changes in DNA arising from compaction into a NCP affect the energetics of hole transfer between guanine sites. We find that structural distortions of DNA can have dramatic consequences for the stability of a guanine radical cation, and therefore, these effects must be taken into account during the modeling of in vivo DNA HT and in the interpretation of experimental findings. When the electrostatic potential arising from the water and basic histone proteins is included we find that DNA-histone contacts, particularly between arginine residues and the DNA minor groove, destabilize the hole state on specific guanine residues. Therefore, contacts between the DNA nucleobases and basic amino acids have the potential to perturb the sites of preferred hole stability in DNA.
通过DNA进行的长程空穴传输(HT)动力学严重依赖于鸟嘌呤自由基阳离子态的相对能量。与蛋白质片段的静电接触以及DNA螺旋二级结构的变化预计会直接影响鸟嘌呤自由基阳离子的稳定性。当考虑真核细胞核中的DNA HT时,这种预期尤为相关,在真核细胞核中,DNA被压缩成核小体核心颗粒(NCPs),即染色质的基本构建单元。通过量子化学计算,我们考虑了DNA核碱基与周围蛋白质和水分子之间的静电相互作用以及DNA压缩成NCP所引起的结构变化如何影响鸟嘌呤位点之间空穴转移的能量学。我们发现DNA的结构畸变可能对鸟嘌呤自由基阳离子的稳定性产生巨大影响,因此,在体内DNA HT建模和实验结果解释过程中必须考虑这些影响。当计入由水和碱性组蛋白产生的静电势时,我们发现DNA - 组蛋白接触,特别是精氨酸残基与DNA小沟之间的接触,会使特定鸟嘌呤残基上的空穴态不稳定。因此,DNA核碱基与碱性氨基酸之间的接触有可能扰乱DNA中空穴稳定性的优选位点。