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超螺旋DNA中十字形结构形成的机制:盐依赖性挤出过程中中心碱基对的初始打开

The mechanism of cruciform formation in supercoiled DNA: initial opening of central basepairs in salt-dependent extrusion.

作者信息

Murchie A I, Lilley D M

机构信息

Department of Biochemistry, University, Dundee, UK.

出版信息

Nucleic Acids Res. 1987 Dec 10;15(23):9641-54. doi: 10.1093/nar/15.23.9641.

Abstract

There are two alternative pathways by which inverted repeat sequences in supercoiled DNA molecules may extrude cruciform structures, called C-type and S-type. S-type cruciforms, which form the great majority, are characterised by absolute requirement for cations to promote extrusion, which then proceeds at higher temperatures and with lower activation parameters than for C-type cruciforms. The mechanism proposed for S-type extrusion involves an initial opening of basepairs limited to the centre of the inverted repeat, formation of intra-strand basepairing and a four-way junction, and finally branch migration to the fully extruded cruciform. The model predicts that central sequence changes will be more kinetically significant than those removed from the centre. We have studied the kinetics of cruciform extrusion by a series of inverted repeats related to that of pIRbke8 by either one or two mutations in the symmetric unit. We find that mutations in the central 8 to 10 nucleotides may profoundly affect extrusion rates--the fastest being 2000-fold faster than the slowest, whereas mutations further from the centre affect rates to a much smaller extent, typically up to ten-fold. These data support the proposed mechanism for extrusion via central opening.

摘要

超螺旋DNA分子中的反向重复序列可以通过两种不同的途径形成十字形结构,分别称为C型和S型。S型十字形结构占绝大多数,其特征是绝对需要阳离子来促进挤出,与C型十字形结构相比,S型十字形结构在较高温度下进行挤出,且活化参数较低。提出的S型挤出机制包括:首先在反向重复序列中心打开碱基对,形成链内碱基配对和四向连接,最后分支迁移到完全挤出的十字形结构。该模型预测,中心序列变化在动力学上比远离中心的序列变化更显著。我们通过一系列与pIRbke8反向重复序列相关的序列研究了十字形挤出的动力学,这些序列在对称单元中有一个或两个突变。我们发现,中心8到10个核苷酸的突变可能会深刻影响挤出速率——最快的比最慢的快2000倍,而远离中心的突变对速率的影响要小得多,通常最多为10倍。这些数据支持了通过中心打开进行挤出的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/23dc/306521/ba335c17923d/nar00267-0037-a.jpg

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