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DNA聚合酶β与致癌物(+)-反式苯并[a]芘二醇环氧化物在引物-模板连接处与DNA形成的主要共价加合物之间的相互作用。

Interactions between DNA polymerase beta and the major covalent adduct of the carcinogen (+)-anti-benzo[a]pyrene diol epoxide with DNA at a primer-template junction.

作者信息

Singh S B, Beard W A, Hingerty B E, Wilson S H, Broyde S

机构信息

Merck Research Laboratories, Rahway, New Jersey 07065, USA.

出版信息

Biochemistry. 1998 Jan 20;37(3):878-84. doi: 10.1021/bi9720639.

Abstract

A molecular dynamics simulation has been carried out with DNA polymerase beta (beta pol) complexed with a DNA primer-template. The templating guanine at the polymerase active site was covalently modified by the carcinogenic metabolite of benzo[a]pyrene, (+)-anti-benzo[a]pyrene diol epoxide, to form the major (+)-trans-anti-benzo[a]pyrene diol epoxide covalent adduct. Thus, the benzo[a]pyrenyl moiety (BP) is situated in the single-stranded template at the junction between double- and single-stranded DNA. The starting structure was based on the X-ray crystal structure of the rat beta pol primer-template and ddCTP complex [Pelletier, H., Sawaya, M. R., Kumar, A., Wilson, S. H., and Kraut, J. (1994) Science 264, 1891-1903]. During the simulation, the BP and its attached templating guanine rearrange to form a structure in which the BP is closer to parallel with the adjacent base pair. In addition, the templating attached guanine is displaced toward the major groove side and access to its Watson-Crick edge is partly obstructed. This structure is stabilized, in part, by new hydrogen bonds between the BP and beta pol Asn279 and Arg283. These residues are within hydrogen bonding distance to the incoming ddCTP and templating guanine, respectively, in the crystal structure of the beta pol ternary complex. Site-directed mutagenesis has confirmed their role in dNTP binding, discrimination, and catalytic efficiency [Beard, W. A., Osheroff, W. P., Prasad, R., Sawaya, M. R., Jaju, M., Wood, T. G., Kraut, J., Kunkel, T. A., and Wilson, S. H. (1996) J. Biol. Chem. 271, 12141-12144]. The predominant biological effect of the BP is DNA polymerase blockage. Consistent with this biological effect, the computed structure suggests the possibility that the BP's main deleterious impact on DNA synthesis might result at least in part from its specific interactions with key polymerase side chains. Moreover, relatively modest movement of BP and its attached guanine, with some concomitant enzyme motion, is necessary to relieve the obstruction and permit the observed rare incorporation of a dATP opposite the guanine lesion.

摘要

已经对与DNA引物 - 模板复合的DNA聚合酶β(β-pol)进行了分子动力学模拟。在聚合酶活性位点的模板鸟嘌呤被苯并[a]芘的致癌代谢物(+)-反式苯并[a]芘二醇环氧化物共价修饰,形成主要的(+)-反式-苯并[a]芘二醇环氧化物共价加合物。因此,苯并[a]芘基部分(BP)位于双链和单链DNA交界处的单链模板中。起始结构基于大鼠β-pol引物 - 模板和ddCTP复合物的X射线晶体结构[佩尔蒂埃,H.,萨瓦亚,M.R.,库马尔,A.,威尔逊,S.H.,和克劳特,J.(1994)《科学》264, 1891 - 1903]。在模拟过程中,BP及其连接的模板鸟嘌呤重新排列形成一种结构,其中BP更接近于与相邻碱基对平行。此外,连接的模板鸟嘌呤向大沟侧移位,并且其沃森 - 克里克边缘的可及性部分受阻。这种结构部分地通过BP与β-pol天冬酰胺279和精氨酸283之间的新氢键而稳定。在β-pol三元复合物的晶体结构中,这些残基分别与进入的ddCTP和模板鸟嘌呤处于氢键距离内。定点诱变已经证实了它们在dNTP结合、辨别和催化效率中的作用[比尔德,W.A.,奥舍罗夫,W.P.,普拉萨德,R.,萨瓦亚,M.R.,贾朱,M.,伍德,T.G.,克劳特,J.,昆克尔,T.A.,和威尔逊,S.H.(1996)《生物化学杂志》271, 12141 - 12144]。BP的主要生物学效应是DNA聚合酶阻滞。与这种生物学效应一致,计算出的结构表明,BP对DNA合成的主要有害影响可能至少部分地源于其与关键聚合酶侧链的特异性相互作用。此外,BP及其连接的鸟嘌呤的相对适度移动以及一些伴随的酶运动对于解除阻碍并允许观察到的与鸟嘌呤损伤相对的dATP的罕见掺入是必要的。

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