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尿嘧啶DNA糖基化酶的碱基翻转突变:使用芘核苷酸楔进行底物挽救。

Base-flipping mutations of uracil DNA glycosylase: substrate rescue using a pyrene nucleotide wedge.

作者信息

Jiang Yu Lin, Stivers James T, Song Fenhong

机构信息

Center for Advanced Research in Biotechnology, University of Maryland Biotechnology Institutes, and The National Institute of Standards and Technology, 9600 Gudelsky Drive, Rockville, Maryland 20850, USA.

出版信息

Biochemistry. 2002 Sep 17;41(37):11248-54. doi: 10.1021/bi026227j.

Abstract

We recently introduced a new substrate rescue tool for investigating enzymatic base flipping by uracil DNA glycosylase (UDG) in which a bulky pyrene nucleotide wedge (Y) was placed opposite a uracil in duplex DNA (i.e., a U/Y pair), thereby preorganizing the target base in an extrahelical conformation [Jiang, Y. L., et al. (2001) J. Biol. Chem. 276, 42347-54]. The pyrene wedge completely rescued the large catalytic defects resulting from removal of the natural Leu191 wedge, presumably mimicking the pushing and plugging function of this group. Here we employ the pyrene rescue method in combination with transient kinetic approaches to assess the functional roles of six conserved enzymatic groups of UDG that have been implicated in the "pinch, push, plug, and pull" base-flipping mechanism (see the preceding paper in this issue). We find that a U/Y base pair increases the apparent second-order rate constant for damaged site recognition by L191G pushing mutation by 45-fold as compared to a U/A pair, thereby fully rescuing the kinetic effects of the mutation. Remarkably, the U/Y pair also allows L191G to proceed through the conformational docking step that is severely comprised with the normal U/A substrate, and allows the active site of UDG to clamp around the extrahelical base. Thus, pyrene also fulfills the plugging role of the Leu191 side chain. Preorganization of uracil in an extrahelical conformation by pyrene allows diffusion-controlled damage recognition by all of these base-flipping mutants, and allows the UDG conformational change to proceed as rapidly as the rate of uracil flipping with the natural U/A base pair. Thus, the pyrene wedge substrate allows UDG to recognize uracil by a lock-and-key mechanism, rather than the natural induced-fit mechanism. Unnatural pyrene base pairs may provide a general strategy to promote site-specific targeting of other enzymes that recognize extrahelical bases.

摘要

我们最近引入了一种新的底物拯救工具,用于研究尿嘧啶DNA糖基化酶(UDG)的酶促碱基翻转。在该工具中,一个庞大的芘核苷酸楔(Y)与双链DNA中的尿嘧啶相对放置(即U/Y对),从而将目标碱基预组织成一种螺旋外构象[Jiang, Y. L., et al. (2001) J. Biol. Chem. 276, 42347 - 54]。芘楔完全挽救了因去除天然亮氨酸191楔而导致的巨大催化缺陷,推测其模拟了该基团的推动和封堵功能。在此,我们将芘拯救方法与瞬态动力学方法相结合,以评估UDG的六个保守酶基团在“挤压、推动、封堵和拉动”碱基翻转机制中的功能作用(见本期前一篇论文)。我们发现,与U/A对相比,U/Y碱基对使L191G推动突变识别损伤位点的表观二级速率常数增加了45倍,从而完全挽救了该突变的动力学效应。值得注意的是,U/Y对还允许L191G进行构象对接步骤,而该步骤在正常的U/A底物中严重受阻,并允许UDG的活性位点围绕螺旋外碱基夹住。因此,芘也履行了亮氨酸191侧链的封堵作用。芘将尿嘧啶预组织成螺旋外构象,使得所有这些碱基翻转突变体能够通过扩散控制损伤识别,并使UDG构象变化能够与天然U/A碱基对的尿嘧啶翻转速率一样快地进行。因此,芘楔底物使UDG能够通过锁钥机制识别尿嘧啶,而不是天然的诱导契合机制。非天然的芘碱基对可能提供一种通用策略,以促进其他识别螺旋外碱基的酶的位点特异性靶向。

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