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单纯疱疹病毒DNA聚合酶通过无碱基位点限制跨损伤合成的机制。

Mechanisms by which herpes simplex virus DNA polymerase limits translesion synthesis through abasic sites.

作者信息

Zhu Yali, Song Liping, Stroud Jason, Parris Deborah S

机构信息

Department of Molecular Virology, Immunology, and Medical Genetics, Ohio State University, Columbus, OH 43210, United States.

出版信息

DNA Repair (Amst). 2008 Jan 1;7(1):95-107. doi: 10.1016/j.dnarep.2007.08.001. Epub 2007 Sep 27.

Abstract

Results suggest a high probability that abasic (AP) sites occur at least once per herpes simplex virus type 1 (HSV-1) genome. The parameters that control the ability of HSV-1 DNA polymerase (pol) to engage in AP translesion synthesis (TLS) were examined because AP lesions could influence the completion and fidelity of viral DNA synthesis. Pre-steady-state kinetic experiments demonstrated that wildtype (WT) and exonuclease-deficient (exo-) pol could incorporate opposite an AP lesion, but full TLS required absence of exo function. Virtually all of the WT pol was bound at the exo site to AP-containing primer-templates (P/Ts) at equilibrium, and the pre-steady-state rate of excision by WT pol was higher on AP-containing than on matched DNA. However, several factors influencing polymerization work synergistically with exo activity to prevent HSV-1 pol from engaging in TLS. Although the pre-steady-state catalytic rate constant for insertion of dATP opposite a T or AP site was similar, ground-state-binding affinity of dATP for insertion opposite an AP site was reduced 3-9-fold. Single-turnover running-start experiments demonstrated a reduced proportion of P/Ts extended to the AP site compared to the preceding site during processive synthesis by WT or exo- pol. Only the exo- pol engaged in TLS, though inefficiently and without burst kinetics, suggesting a much slower rate-limiting step for extension beyond the AP site.

摘要

结果表明,无碱基(AP)位点在单纯疱疹病毒1型(HSV-1)基因组中至少每出现一次的可能性很高。由于AP损伤可能影响病毒DNA合成的完成和保真度,因此研究了控制HSV-1 DNA聚合酶(pol)进行AP跨损伤合成(TLS)能力的参数。稳态前动力学实验表明,野生型(WT)和核酸外切酶缺陷型(exo-)pol可以在AP损伤的对面掺入,但完整的TLS需要不存在exo功能。实际上,所有的WT pol在平衡时都结合在含AP的引物模板(P/Ts)的exo位点上,并且WT pol在含AP的DNA上的稳态前切除率高于匹配的DNA。然而,几个影响聚合的因素与exo活性协同作用,以防止HSV-1 pol参与TLS。尽管在T或AP位点对面插入dATP的稳态前催化速率常数相似,但dATP在AP位点对面插入的基态结合亲和力降低了3至9倍。单周转启动实验表明,与WT或exo- pol在进行性合成过程中延伸到前一个位点相比,延伸到AP位点的P/Ts比例降低。只有exo- pol参与了TLS,尽管效率低下且没有爆发动力学,这表明延伸超过AP位点的限速步骤要慢得多。

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