Jiang Yu Lin, Stivers James T
Department of Pharmacology and Molecular Sciences, The Johns Hopkins University School of Medicine, 725 North Wolfe Street, Baltimore, Maryland 21205-2185, USA.
Biochemistry. 2002 Sep 17;41(37):11236-47. doi: 10.1021/bi026226r.
The DNA repair enzyme uracil DNA glycosylase (UDG) locates unwanted uracil bases in genomic DNA using a remarkable base-flipping mechanism in which the entire deoxyuridine nucleotide is rotated from the DNA base stack into the enzyme active site. Enzymatic base flipping has been described as a three-step process involving phosphodiester backbone pinching, base extrusion through active pushing and plugging by a leucine side chain that inserts in the DNA minor groove, and, finally, pulling by hydrogen-bonding groups that interact with the extrahelical base. Here we employ mutagenesis 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. Our results show that these mutant enzymes are capable of flipping the uracil base from the duplex, but that many of these mutations prevent a subsequent induced fit conformational step in which catalytic groups of UDG dock with the flipped-out base. These studies support our previous model for base flipping in which a conformational gating step closely follows base extrusion from the DNA duplex [Stivers, J. T., et al. (1999) Biochemistry 38, 952-963]. A model that accounts for the temporal and functional roles of these side chain interactions along the reaction pathway for base flipping is presented.
DNA修复酶尿嘧啶DNA糖基化酶(UDG)利用一种非凡的碱基翻转机制在基因组DNA中定位不需要的尿嘧啶碱基,在该机制中,整个脱氧尿苷核苷酸从DNA碱基堆积中旋转到酶的活性位点。酶促碱基翻转被描述为一个三步过程,包括磷酸二酯主链挤压、通过活性推动将碱基挤出以及由插入DNA小沟的亮氨酸侧链进行封堵,最后,通过与螺旋外碱基相互作用的氢键基团进行拉动。在这里,我们将诱变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。我们的结果表明,这些突变酶能够将尿嘧啶碱基从双链体中翻转出来,但许多这些突变阻止了随后的诱导契合构象步骤,在该步骤中UDG的催化基团与翻转出的碱基对接。这些研究支持了我们之前提出的碱基翻转模型,即构象门控步骤紧跟在碱基从DNA双链体挤出之后[斯蒂弗斯,J. T.等人(1999年)《生物化学》38卷,952 - 963页]。本文提出了一个解释这些侧链相互作用在碱基翻转反应途径中的时间和功能作用的模型。