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5'CpG3'和5'GpC3'连接步骤处交替链三螺旋形成的优化。

Optimization of alternate-strand triple helix formation at the 5'CpG3' and 5'GpC3' junction steps.

作者信息

Marchand C, Sun J S, Bailly C, Waring M J, Garestier T, Hélène C

机构信息

Laboratoire de Biophysique, Muséum National d'Histoire Naturelle, INSERM U201, CNRS URA481, Paris, France.

出版信息

Biochemistry. 1998 Sep 22;37(38):13322-9. doi: 10.1021/bi980618+.

Abstract

Oligonucleotide-directed triple helix formation normally requires a long tract of oligopyrimidine.oligopurine sequence. This limitation can be partially overcome by alternate-strand triple helix (or switch triple helix) formation which enables recognition of alternating oligopurine/oligopyrimidine sequences. The present work is devoted to the optimization of switch triple helix formation at the 5'CpG3' and 5'GpC3' junction steps by combination of base triplets in Hoogsteen and in reverse Hoogsteen configurations. Rational design by molecular mechanics was first carried out to study the geometrical constraints at different junction steps and to propose a "switch code" which would optimize the interactions at junctions. These predictions were further checked and validated experimentally by gel retardation and DNase I footprinting assays. It was shown that the choice of an appropriate linker nucleotide in the switching third strand plays an important role in the interaction between oligonucleotides and alternating oligopurine/oligopyrimidine target sequences at different junctions: (i) the addition of a cytosine at the junction level in the oligonucleotide optimizes the crossover at the 5'CpG3' junction, whereas (ii) the best crossover at the 5'GpC3' junction step is achieved without any additional nucleotide. These results provide a useful guideline to extend double-stranded DNA sequence recognition by switch triple helix formation.

摘要

寡核苷酸定向三链螺旋的形成通常需要一段长的寡嘧啶-寡嘌呤序列。这种限制可以通过交替链三链螺旋(或开关三链螺旋)的形成来部分克服,后者能够识别交替的寡嘌呤/寡嘧啶序列。目前的工作致力于通过在Hoogsteen和反向Hoogsteen构型中组合碱基三联体来优化在5'CpG3'和5'GpC3'连接步骤处的开关三链螺旋形成。首先通过分子力学进行合理设计,以研究不同连接步骤处的几何约束,并提出一种“开关密码”,该密码将优化连接处的相互作用。这些预测通过凝胶阻滞和DNase I足迹分析进一步进行了实验验证。结果表明,在切换的第三条链中选择合适的连接核苷酸在不同连接处的寡核苷酸与交替的寡嘌呤/寡嘧啶靶序列之间的相互作用中起着重要作用:(i)在寡核苷酸的连接水平添加一个胞嘧啶可优化5'CpG3'连接处的交叉,而(ii)在5'GpC3'连接步骤处无需任何额外核苷酸即可实现最佳交叉。这些结果为通过开关三链螺旋形成扩展双链DNA序列识别提供了有用的指导。

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