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在Cre-LoxP重组中,蛋白质-DNA相互作用对活性复合物组装和周转速率的调节。

Modulation of the active complex assembly and turnover rate by protein-DNA interactions in Cre-LoxP recombination.

作者信息

Martin Shelley S, Chu Victor C, Baldwin Enoch

机构信息

Section of Molecular and Cellular Biology, University of California, 1 Shields Avenue, Davis, California 95616, USA.

出版信息

Biochemistry. 2003 Jun 10;42(22):6814-26. doi: 10.1021/bi0272306.

Abstract

Cre promotes recombination at the 34 bp LoxP sequence. Substitution of a critical C-G base pair in LoxP with an A-T base pair, to give LoxAT, reduced Cre binding in vitro and abolished recombination in vivo [Hartung, M., and Kisters-Woike, B. (1998) J. Biol. Chem. 273, 22884-22891].We demonstrated that LoxAT can be recombined in vitro. However, Cre discriminates against this substrate both before and after DNA binding. The preference for LoxP over LoxAT is the result of reduced binding and a slower turnover rate, amplified by changes in cooperativity of complex assembly. With LoxAT, similar levels of substrate turnover required 2-2.5-fold higher protein-DNA concentrations compared to LoxP, but the sigmoidal behavior of the concentration dependence was more pronounced. Further, the Cre-LoxAT complexes reacted 4-5-fold more slowly. In the 2.3 A resolution Cre-LoxAT complex structure, the major groove Arg259-guanine interaction was disrupted, explaining the reduced binding. Overall structural shifts and mobility changes indicate more favorable interactions between subunits, providing a hypothesis for the reduced turnover rate. Concomitant with the displacement of Arg259 from the DNA, adjacent charged residues Glu262 and Glu266 shifted to form salt bridges with the Arg259 guanidinium moiety. Substitution of Glu262 and Glu266 with glutamine increased Cre complex assembly efficiency and reaction rates with both LoxAT and LoxP, but diminished Cre's ability to distinguish them. The increased rate of this variant suggests that DNA substrate binding and turnover are coupled. The improved efficiency, made at some expense of sequence discrimination, may be useful for enhancing recombination in vivo.

摘要

Cre可促进在34 bp的LoxP序列处发生重组。将LoxP中一个关键的C-G碱基对替换为A-T碱基对,得到LoxAT,这降低了Cre在体外的结合能力,并在体内消除了重组现象[哈通,M.,和基斯特斯-沃伊克,B.(1998年)《生物化学杂志》273卷,22884 - 22891页]。我们证明LoxAT在体外可发生重组。然而,Cre在DNA结合前后都对该底物有区分作用。相对于LoxAT,对LoxP的偏好是由于结合减少和周转速率较慢,而复合物组装协同性的变化进一步放大了这种差异。对于LoxAT,与LoxP相比,相似水平的底物周转需要高2 - 2.5倍的蛋白质 - DNA浓度,但浓度依赖性的S形行为更为明显。此外,Cre - LoxAT复合物的反应速度慢4 - 5倍。在分辨率为2.3 Å的Cre - LoxAT复合物结构中,大沟中精氨酸259与鸟嘌呤的相互作用被破坏,这解释了结合减少的原因。整体结构的变化和流动性的改变表明亚基之间有更有利的相互作用,这为周转速率降低提供了一个假设。随着精氨酸259从DNA上的位移,相邻的带电荷残基谷氨酸262和谷氨酸266发生移位,与精氨酸259的胍基部分形成盐桥。用谷氨酰胺替换谷氨酸262和谷氨酸266提高了Cre与LoxAT和LoxP的复合物组装效率和反应速率,但削弱了Cre区分它们的能力。这种变体反应速率的提高表明DNA底物的结合和周转是相关联的。以一定程度的序列区分能力为代价提高的效率,可能有助于增强体内的重组。

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