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Characterization of TATA Box Binding Protein Interaction with Minicircle DNA

机译:TATA盒结合蛋白与微环DNA相互作用的表征

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摘要

Protein-induced bending of DNA plays an important role in regulating its transcription, replication, recombination, and packaging into nucleosomes. In particular, many general and gene-specific transcription factors bend DNA. The TATA box-binding protein (TBP) is essential to promoter recognition, and it provides an especially interesting example of dramatic DNA bending.Previous work in our laboratory has shown that TBP bound to strained DNA can induce negative supercoiling, proposed to be the result of untwisting without the compensating writhe provided by the Phe stirrups. The structural proposal makes the clear predictions that TBP lacking the Phe stirrups will induce negative supercoiling under all conditions, and that the mutant may require negative supercoiling in order to bind at all.To test this prediction, we have made the F99A-F116A and F99A-F116A-F190AF207A site-directed TBP mutants that lack the N and C-terminal stirrups. We have characterized the binding of wild type and mutant TBP to linear DNA and to negatively supercoiled minicircles using quantitative hydroxyl radical footprinting, which is the first application for circular DNA, and electrophoretic mobility shift assays (EMSA).The results of the quantitative hydroxyl radical footprinting and EMSA suggest that mutant TBP binds better to the negatively supercoiled minicircle than to the linear DNA. We also observed quite different footprinting patterns for circular versus linear DNA at the TATA box. This indicates that the structure of TBP bound to minicircles may be different than the linear DNA. The equilibrium dissociation constants (Kd) of wild type TBP derived from hydroxyl radical footprinting titrations for the linear DNA and the -1 topoisomers of 203 bp are 11 nM and 3 nM respectively. This suggests that pre-bending of the TATA box enhanced DNA binding. From these observations, we propose that TBP binding to promoters upon gene activation may be enhanced by the topological strain induced in the DNA upon chromatin remodeling.
机译:蛋白质诱导的DNA弯曲在调节其转录,复制,重组和包装入核小体中起着重要作用。特别地,许多一般的和基因特异性的转录因子使DNA弯曲。 TATA盒结合蛋白(TBP)是启动子识别必不可少的,它提供了一个有趣的DNA急剧弯曲的例子。我们实验室的先前工作表明,结合到应变DNA上的TBP可以诱导负超螺旋,这可能是结果在没有Phe箍筋提供的补偿扭曲的情况下不扭曲。结构性建议明确指出缺乏Phe箍筋的TBP在所有条件下均会诱导负超螺旋,并且突变体可能需要负超螺旋才能完全结合。为测试该预测,我们对F99A-F116A和F99A进行了测试-F116A-F190AF207A缺少N和C末端stir的定点TBP突变体。我们已使用定量羟基自由基足迹法(这是环状DNA的首次应用)和电泳迁移率迁移测定法(EMSA)对野生型和突变型TBP与线性DNA以及负超螺旋微圆的结合进行了表征。足迹法和EMSA表明,突变型TBP与负超螺旋微环的结合比与线性DNA的结合更好。我们还观察到在TATA盒中,环状DNA与线性DNA的足迹模式完全不同。这表明与小环结合的TBP的结构可能不同于线性DNA。线性DNA和203 bp的-1拓扑异构体的羟基自由基足迹滴定法得出的野生型TBP的平衡解离常数(Kd)分别为11 nM和3 nM。这表明TATA盒的预弯曲增强了DNA结合。从这些观察结果,我们提出,在染色质重塑时,DNA中诱导的拓扑株可能会增强基因激活后与启动子结合的TBP。

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    Byun Jung Shin;

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  • 年度 2005
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