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α/γ Transitions in the B-DNA backbone

机译:B-DNA主链中的α/γ跃迁

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In the crystal structures of protein complexes with B-DNA, α and γ DNA backbone torsion angles often exhibit non-canonical values. It is not known if these alternative backbone conformations are easily accessible in solution and can contribute to the specific recognition of DNA by proteins. We have analysed the coupled transition of the α and γ torsion angles within the central GpC step of a B-DNA dodecamer by computer simulations. Five stable or metastable non-canonical α/γ sub-states are found. The most favourable pathway from the canonical α/γ structure to any unusual form involves a counter-rotation of α and γ, via the trans conformation. However, the corresponding free energy indicates that spontaneous flipping of the torsions is improbable in free B-DNA. This is supported by an analysis of the available high resolution crystallographic structures showing that unusual α/γ states are only encountered in B-DNA complexed to proteins. An analysis of the structural consequences of α/γ transitions shows that the non-canonical backbone geometry influences essentially the roll and twist values and reduces the equilibrium dispersion of structural parameters. Our results support the hypothesis that unusual α/γ backbones arise during protein-DNA complexation, assisting the fine structural adjustments between the two partners and playing a role in the overall complexation free energy.
机译:在具有B-DNA的蛋白质复合物的晶体结构中,α和γDNA主链扭转角通常表现出非规范值。尚不清楚这些替代的骨架构象是否易于在溶液中获得,并且是否有助于蛋白质对DNA的特异性识别。我们已经通过计算机模拟分析了B-DNA十二聚体的中心GpC步骤内α和γ扭转角的耦合跃迁。发现了五个稳定或亚稳态的非规范α/γ子状态。从规范的α/γ结构到任何异常形式的最有利途径包括通过反式构象使α和γ反向旋转。但是,相应的自由能表明在自由B-DNA中不可能自发地扭转。对可用的高分辨率晶体学结构的分析支持了这一点,该结构表明仅在与蛋白质复合的B-DNA中会遇到异常的α/γ状态。对α/γ跃迁的结构后果的分析表明,非规范的主链几何结构实质上影响了横摇和扭曲值,并降低了结构参数的平衡分散。我们的研究结果支持以下假设:蛋白质/ DNA络合过程中会出现异常的α/γ骨架,有助于两个分子之间的精细结构调整,并在整体络合自由能中发挥作用。

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