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首页> 外文期刊>Journal of Molecular Biology >Backbone dynamics and refined solution structure of the N-terminal domain of DNA polymerase beta. Correlation with DNA binding and dRP lyase activity
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Backbone dynamics and refined solution structure of the N-terminal domain of DNA polymerase beta. Correlation with DNA binding and dRP lyase activity

机译:DNA聚合酶βN端域的骨干动力学和精细的溶液结构。与DNA结合和dRP裂解酶活性的相关性

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摘要

Mammalian DNA polymerase beta functions in the base excision DNA repair pathway filling in short patches (1-5 nt) in damaged DNA and removing deoxyribose 5'-phosphate from the 5'-side of damaged DNA. The backbone dynamics and the refined solution structure of the N-terminal domain of P-Pol have been characterized in order to establish the potential contribution(s) of backbone motion to the DNA binding and deoxyribose 5'-phosphate lyase function of this domain. The N-terminal domain is formed from four helices packed as two antiparallel pairs with a 60 degrees crossing between the pairs. The RMSD of the NMR conformers (residues 13-80) is 0.37 Angstrom for the backbone heavy atoms and 0.78 Angstrom for all heavy atoms. NMR characterization of the binding site(s) for a ssDNA-5mer, ssDNA-8mer, ssDNA-9mer, and dsDNA-12mer shows a consensus surface for the binding of these various DNA oligomers, that surrounds and includes the deoxyribose 5'-phosphate lyase active site region. Connection segments between helices 1 and 2 and between helices 3 and 4 each contribute to DNA binding. Helix-3-turn-helix-4 forms a helix-hairpin-helix motif. The highly conserved hairpin sequence (LPGVG) displays a significant degree of picosecond time-scale motion within the backbone, that is possibly important for DNA binding at the phosphodiester backbone. An Omega-loop connecting helices 1 and 2 and helix-2 itself display significant exchange contributions (R-ex) at the backbone amides due to apparent conformational type motion on a millisecond time-scale. This motion is likely important in allowing the Omega-loop and helix-2 to shift toward, and productively interact with, gapped DNA. The deoxyribose 5'-phosphate lyase catalytic residues that include K72 which forms the Schiff's base, Y39 which is postulated to promote proton transfer to the aldehyde, and K35 which assists in phosphate elimination, show highly restricted backbone motion. H34, which apparently participates in detection of the abasic site hole and assists in the opening of the hemiacetal, shows conformational exchange. (C) 2000 Academic Press. [References: 71]
机译:哺乳动物DNA聚合酶β在碱基切除DNA修复途径中起作用,填充受损DNA中的短小片段(1-5 nt),并从受损DNA的5'侧去除脱氧核糖5'-磷酸。为了确定主链运动对该域的DNA结合和脱氧核糖5'-磷酸裂解酶功能的潜在贡献,已对P-Pol N末端域的骨架动力学和精制的溶液结构进行了表征。 N末端域由四个螺旋组成,两个螺旋以两个反平行对的形式排列,两对之间成60度交叉。 NMR构象异构体(残基13-80)的RMSD对于主链重原子为0.37埃,对于所有重原子为0.78埃。 ssDNA-5mer,ssDNA-8mer,ssDNA-9mer和dsDNA-12mer结合位点的NMR表征显示了这些DNA低聚物结合的共有表面,该低聚物围绕并包括脱氧核糖5'-磷酸酯。裂解酶活性位点区域。螺旋1和2之间以及螺旋3和4之间的连接片段各自有助于DNA结合。螺旋3-转-螺旋4形成螺旋-发夹-螺旋基序。高度保守的发夹序列(LPGVG)在主链内显示出显着的皮秒级时标运动,这可能对磷酸二酯主链上的DNA结合很重要。连接螺旋1和2和螺旋2本身的Omega环由于在毫秒时间尺度上明显的构象类型运动而在主链酰胺上显示出显着的交换贡献(R-ex)。该运动可能对于允许Omega-loop和helix-2向缺口DNA转移并与之有效相互作用非常重要。脱氧核糖5'-磷酸裂解酶的催化残基包括形成席夫碱的K72,假定促进质子转移至醛的Y39和有助于磷酸消除的K35,它们的骨架运动受到严格限制。 H34显然参与了无碱基位点孔的检测并有助于半缩醛的打开,它显示出构象交换。 (C)2000学术出版社。 [参考:71]

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