Thenmalarchelvi R, Yathindra N
Department of Crystallography and Biophysics, University of Madras Guindy Campus, Chennai 600 025, India.
Nucleic Acids Res. 2005;33(1):43-55. doi: 10.1093/nar/gki143.
DNA triplexes are formed by both isomorphic (structurally alike) and non-isomorphic (structurally dissimilar) base triplets. It is espoused here that (i) the base triplet non-isomorphism may be articulated in structural terms by a residual twist (Delta(t) degrees), the angle formed by line joining the C1'...C1' atoms of the adjacent Hoogsteen or reverse Hoogsteen (RH) base pairs and the difference in base triplet radius (Delta(r) A), and (ii) their influence on DNA triplex is largely mechanistic, leading to the prediction of a high (t + Delta(t))degrees and low (t - Deltat)degrees twist at the successive steps of Hoogsteen or RH duplex of a parallel or antiparallel triplex. Efficacy of this concept is corroborated by molecular dynamics (MD) simulation of an antiparallel DNA triplex comprising alternating non-isomorphic GGC and TAT triplets. Conformational changes necessitated by base triplet non-isomorphism are found to induce an alternating (i) high anti and anti glycosyl and (ii) BII and an unusual BIII conformation resulting in a zigzag backbone for the RH strand. Thus, base triplet non-isomorphism causes DNA triplexes into exhibiting sequence-dependent non-uniform conformation. Such structural variations may be relevant in deciphering the specificity of interaction with DNA triplex binding proteins. Seemingly then, residual twist (Delta(t) degrees) and radial difference (Deltar A) suffice as indices to define and monitor the effect of base triplet non-isomorphism in nucleic acid triplexes.
DNA三链体由同构(结构相似)和非同构(结构不同)的碱基三联体形成。本文支持以下观点:(i)碱基三联体的非同构可以通过残余扭转(Δ(t)度)在结构上进行阐述,残余扭转是相邻Hoogsteen或反向Hoogsteen(RH)碱基对的C1'...C1'原子连线所形成的角度,以及碱基三联体半径的差异(Δ(r) Å);(ii)它们对DNA三链体的影响在很大程度上是机制性的,这导致预测在平行或反平行三链体的Hoogsteen或RH双链的连续步骤中会出现高(t + Δ(t))度和低(t - Δt)度的扭转。由交替的非同构GGC和TAT三联体组成的反平行DNA三链体的分子动力学(MD)模拟证实了这一概念的有效性。发现碱基三联体非同构所必需的构象变化会诱导交替出现:(i)高反式和反式糖苷键;(ii)BII和异常的BIII构象,导致RH链的主链呈锯齿状。因此,碱基三联体非同构导致DNA三链体呈现出序列依赖性的非均匀构象。这种结构变化可能与解读与DNA三链体结合蛋白相互作用的特异性有关。那么,残余扭转(Δ(t)度)和径向差异(Δr Å)似乎足以作为定义和监测核酸三链体中碱基三联体非同构效应的指标。