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DNA聚合酶I(克列诺片段)的动力学机制:第二种构象变化的鉴定及内部平衡常数的评估

Kinetic mechanism of DNA polymerase I (Klenow fragment): identification of a second conformational change and evaluation of the internal equilibrium constant.

作者信息

Dahlberg M E, Benkovic S J

机构信息

Department of Chemistry, Pennsylvania State University, University Park 16802.

出版信息

Biochemistry. 1991 May 21;30(20):4835-43. doi: 10.1021/bi00234a002.

Abstract

In a previously determined minimal kinetic scheme for DNA polymerization catalyzed by the Klenow fragment (KF) of Escherichia coli DNA polymerase I, a nonchemical step that interconverted the KF'.DNAn+1.PPi and KF.DNAn+1PPi complexes was not observed in correct incorporation [Kuchta, R. D., Mizrahi, V., Benkovic, P.A., Johnson, K.A., & Benkovic, S.J. (1987) Biochemistry 26, 8410-8417] but was detected in misincorporation [Kuchta, R. D., Benkovic, P.A., & Benkovic, S.J. (1988) Biochemistry 27, 6716-6725]. In a pulse-chase experiment in this study, a burst amplitude of 100% of the enzyme concentration is observed; under pulse-quench conditions, the burst amplitude is 80%, indicative of the accumulation of the KF'.DNA.dNTP species owing to a slow step subsequent to chemical bond formation. This latter step was unequivocally identified by single-turnover pyrophosphorolysis and pyrophosphate-exchange experiments as one interconverting KF'.DNAn+1.PPi and KF.DNAn+1.PPi. The rate constants for this step in both directions were established through the rate constants for processive synthesis and pyrophosphorolysis. Pyrophosphorolysis of a 3'-phosphorothioate DNA duplex confirmed that the large elemental effect observed previously [Mizrahi, V., Henrie, R. N., Marlier, J.F., Johnson, K.A., & Benkovic, S.J. (1985) Biochemistry 24, 4010-4018] in this direction but not in polymerization is due to a marked decrease in the affinity of KF for the phosphorothioate-substituted duplex and not to the chemical step. The combination of the experimentally measured equilibrium constant for the bound KF.DNA species with the collective kinetic measurements further extends previous insights into the dynamics of the polymerization process catalyzed by KF.

摘要

在先前确定的大肠杆菌DNA聚合酶I的Klenow片段(KF)催化DNA聚合的最小动力学方案中,在正确掺入时未观察到使KF'.DNAn+1.PPi和KF.DNAn+1PPi复合物相互转化的非化学步骤[库奇塔,R.D.,米兹拉希,V.,本科维奇,P.A.,约翰逊,K.A.,&本科维奇,S.J.(1987年)《生物化学》26卷,8410 - 8417页],但在错误掺入时被检测到[库奇塔,R.D.,本科维奇,P.A.,&本科维奇,S.J.(1988年)《生物化学》27卷,6716 - 6725页]。在本研究的脉冲追踪实验中,观察到爆发幅度为酶浓度的100%;在脉冲淬灭条件下,爆发幅度为80%,这表明由于化学键形成后存在一个缓慢步骤,导致KF'.DNA.dNTP物种积累。通过单轮焦磷酸解和焦磷酸交换实验明确确定了后一步骤是使KF'.DNAn+1.PPi和KF.DNAn+1.PPi相互转化的步骤。通过连续合成和焦磷酸解的速率常数确定了该步骤在两个方向上的速率常数。3'-硫代磷酸酯DNA双链体的焦磷酸解证实,先前在此方向而非聚合过程中观察到的大的元素效应是由于KF对硫代磷酸酯取代双链体的亲和力显著降低,而非化学步骤所致。结合实验测量的结合型KF.DNA物种的平衡常数与总体动力学测量结果,进一步扩展了先前对KF催化聚合过程动力学的认识。

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