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分子内对 B-->A 转换序列特异性的影响:AA/TT 和 GG/CC 步骤中的低能构象变化。

The intramolecular impact to the sequence specificity of B-->A transition: low energy conformational variations in AA/TT and GG/CC steps.

机构信息

Engelhardt Institute of Molecular Biology RAS, Vavilov str., 32, 119991 Moscow, Russia.

出版信息

J Biomol Struct Dyn. 2010 Apr;27(5):667-93.

Abstract

It is well known, that local B--> A transformation in DNA is involved in several biological processes. In vitro B<--> A transition is sequence-specific. The physical basis of this specificity is not known yet. Here we analyze the effect of intramolecular interactions on the structural behavior of the GG/CC and AA/TT steps. These steps exemplify sequence specific bias to the B- or A-form structure. Optimization of potential energy of the molecular systems composed of an octanucleotide, neutralized by Na(+) and solvated with TIP3P water molecules in rectangular box with periodic boundary conditions gives the statistically representative sets of low energy structures for GG/CC and AA/TT steps in the middle of the diverse flanking sequences. Permissible 3D variations of GG/CC and AA/TT, and correlation of the relative motion of base pairs in these steps were analyzed. AA/TT step permits high variability for low energy conformers in the B-form DNA and small variability for low energy conformers in the A-form DNA. In contrast GG/CC step permits high variability for low energy conformers in the A-form DNA and small variability for low energy conformers in the B-form DNA. The relative motion of base pairs in GG/CC step is high correlated, while in AA/TT step this correlation is notably less. Atom-atom interactions inside-the-step always favors the B-form and their component - stacking interactions (atom-atom interactions between nucleic bases) is crucial for the duplex stabilization. Formation of the A-form for both steps is a result of interactions with the flanking sequences and water-cation environment in the box. The average energy difference between conformations presenting B-form and A-form for the GG/CC step is high, while for the AA/TT step it is rather low. Thus, intramolecular interactions in GG/CC and AA/TT steps affect the possible conformational diversity ("conformational entropy") of the A- and B- type structures of DNA step. This determines the known bias of the A-form DNA depending on the enrichment of sequences with GG/CC. If structural tuning during the process of protein-DNA complex formation lead to the local B--> A transformation of DNA, it is largely directed by high conformational diversity of GG/CC step in the A-form. In such a case the presence in the target site of both kinds of examined steps ensures the reversible character of ligand binding.

摘要

众所周知,DNA 中的局部 B-->A 转换涉及多种生物过程。体外 B<-->A 转换是序列特异性的。这种特异性的物理基础尚不清楚。在这里,我们分析了分子内相互作用对 GG/CC 和 AA/TT 步结构行为的影响。这些步骤例证了对 B 或 A 构象结构的序列特异性偏向。优化由八核苷酸组成的分子系统的势能,由 Na(+)中和并用 TIP3P 水分子在具有周期性边界条件的矩形盒中溶剂化,可得到在不同侧翼序列中间的 GG/CC 和 AA/TT 步的低能结构的统计代表性集合。允许 GG/CC 和 AA/TT 进行 3D 变化,并分析这些步骤中碱基对相对运动的相关性。AA/TT 步允许 B 型 DNA 中的低能构象具有高变异性,而 A 型 DNA 中的低能构象具有小变异性。相比之下,GG/CC 步允许 A 型 DNA 中的低能构象具有高变异性,而 B 型 DNA 中的低能构象具有小变异性。GG/CC 步中碱基对的相对运动高度相关,而在 AA/TT 步中,这种相关性显著降低。步内的原子-原子相互作用始终有利于 B 型,并且其组成部分 - 堆积相互作用(核酸碱基之间的原子-原子相互作用)对于双链体稳定化至关重要。两个步骤的 A 型形成是与侧翼序列和盒中的水-阳离子环境相互作用的结果。呈现 B 型和 A 型的构象之间的平均能量差对于 GG/CC 步很高,而对于 AA/TT 步则相当低。因此,GG/CC 和 AA/TT 步中的分子内相互作用影响 DNA 步的 A 型和 B 型结构的可能构象多样性(“构象熵”)。这决定了已知的 A 型 DNA 偏向取决于富含 GG/CC 的序列。如果在蛋白质-DNA 复合物形成过程中的结构调整导致 DNA 的局部 B-->A 转换,则在很大程度上由 A 型中 GG/CC 步的高构象多样性所引导。在这种情况下,在靶位点中存在这两种类型的步骤确保了配体结合的可逆性。

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