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自旋标记核苷酸在EcoRI核酸内切酶结合位点边界处的迁移率。

Spin-labeled nucleotide mobility in the boundary of the EcoRI endonuclease binding site.

作者信息

Keyes R S, Cao Y Y, Bobst E V, Rosenberg J M, Bobst A M

机构信息

Department of Chemistry University of Cincinnati, Ohio 45221, USA.

出版信息

J Biomol Struct Dyn. 1996 Oct;14(2):163-72. doi: 10.1080/07391102.1996.10508105.

Abstract

A complex consisting of the EcoRI endonuclease site-specifically bound to spin-labeled DNA 26mers was prepared to provide a model system for studying possible conformational changes resulting from protein binding. EPR was used to monitor the mobility of the spin labels that were strategically placed in position 6, 9, or 11 with respect to the dyad axis of the 26mer. These positions are located within the flanking region on either side of the EcoRI hexamer binding site. This allows the monitoring of potential distal structural changes in the DNA helix caused by protein binding. The spectral line shapes indicate that the spin label closest to the EcoRI endonuclease binding site, i.e., in position 6, is most influenced by the binding event. The EPR data are analyzed according to a model that distinguishes between spectral effects due to a change in the hydrodynamic shape of the complex and those resulting from local variations in the spin-label mobility as characterized by a local order parameter S. S reflecting the motional restriction of the spin-labeled base is 0.20 +/- 0.01 for all three oligomers as well as for the two complexes with the label in position 9 or 11, while the position 6 labeled complex yields S = 0.25. To further evaluate the origin of the slightly larger EPR effect observed with position 6 labeled material, molecular dynamics (MD) simulations were used to explore the space accessible to the probes in positions 6, 9, and 11. MD results gave similar nitroxide trajectories for all three labeled 26mers in the absence or presence of EcoRI. Thus, the small position 6 effect is attributed to a structural distortion in the major groove of the DNA at this location possibly corresponding to a bend induced by protein binding. The observation that the spectral changes are small indicates the absence of any significant structural disruption being propagated along the helix as a result of protein binding. Also, the fact that the line shape of the 26mers did not change as expected from hydrodynamic theory in view of the significant increase in molecular volume upon protein binding suggests that there are additional relaxation processes involving the protein and nucleic acid.

摘要

制备了一个由EcoRI核酸内切酶与自旋标记的26聚体DNA特异性结合组成的复合物,以提供一个模型系统,用于研究蛋白质结合可能导致的构象变化。电子顺磁共振(EPR)用于监测自旋标记的流动性,这些自旋标记被战略性地放置在相对于26聚体二分轴的第6、9或11位。这些位置位于EcoRI六聚体结合位点两侧的侧翼区域内。这允许监测由蛋白质结合引起的DNA螺旋中潜在的远端结构变化。光谱线形状表明,最接近EcoRI核酸内切酶结合位点的自旋标记,即第6位的自旋标记,受结合事件的影响最大。根据一个模型分析EPR数据,该模型区分了由于复合物流体动力学形状变化引起的光谱效应和由局部顺序参数S表征的自旋标记流动性局部变化引起的光谱效应。对于所有三种寡聚物以及标记位于第9或11位的两种复合物,反映自旋标记碱基运动限制的S为0.20±0.01,而标记位于第6位的复合物产生的S = 0.25。为了进一步评估在第6位标记的材料中观察到的稍大EPR效应的起源,使用分子动力学(MD)模拟来探索第6、9和11位探针可及的空间。MD结果表明,在不存在或存在EcoRI的情况下,所有三种标记的26聚体的氮氧化物轨迹相似。因此,第6位的小效应归因于该位置DNA大沟中的结构畸变,这可能对应于蛋白质结合诱导的弯曲。光谱变化较小的观察结果表明,由于蛋白质结合,没有任何明显的结构破坏沿着螺旋传播。此外,鉴于蛋白质结合后分子体积显著增加,26聚体的线形并未如流体动力学理论预期的那样发生变化,这一事实表明存在涉及蛋白质和核酸的额外弛豫过程。

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