Oertell Keriann, Kashemirov Boris A, Negahbani Amirsoheil, Minard Corinne, Haratipour Pouya, Alnajjar Khadijeh S, Sweasy Joann B, Batra Vinod K, Beard William A, Wilson Samuel H, McKenna Charles E, Goodman Myron F
Department of Therapeutic Radiology and Department of Genetics , Yale University School of Medicine , New Haven , Connecticut 06520 , United States.
Genome Integrity and Structural Biology Laboratory, National Institute of Environmental Health Sciences , National Institutes of Health , Research Triangle , North Carolina 27709 , United States.
Biochemistry. 2018 Jul 3;57(26):3925-3933. doi: 10.1021/acs.biochem.8b00417. Epub 2018 Jun 19.
We examine the DNA polymerase β (pol β) transition state (TS) from a leaving group pre-steady-state kinetics perspective by measuring the rate of incorporation of dNTPs and corresponding novel β,γ-CXY-dNTP analogues, including individual β,γ-CHF and -CHCl diastereomers with defined stereochemistry at the bridging carbon, during the formation of right (R) and wrong (W) base pairs. Brønsted plots of log k versus p K of the leaving group bisphosphonic acids are used to interrogate the effects of the base identity, the dNTP analogue leaving group basicity, and the precise configuration of the C-X atom in R and S stereoisomers on the rate-determining step ( k). The dNTP analogues provide a range of leaving group basicity and steric properties by virtue of monohalogen, dihalogen, or methyl substitution at the carbon atom bridging the β,γ-bisphosphonate that mimics the natural pyrophosphate leaving group in dNTPs. Brønsted plot relationships with negative slopes are revealed by the data, as was found for the dGTP and dTTP analogues, consistent with a bond-breaking component to the TS energy. However, greater multiplicity was shown in the linear free energy relationship, revealing an unexpected dependence on the nucleotide base for both A and C. Strong base-dependent perturbations that modulate TS relative to ground-state energies are likely to arise from electrostatic effects on catalysis in the pol active site. Deviations from a uniform linear Brønsted plot relationship are discussed in terms of insights gained from structural features of the prechemistry DNA polymerase active site.
我们从离去基团预稳态动力学的角度研究了DNA聚合酶β(polβ)的过渡态(TS),方法是测量在正确(R)和错误(W)碱基对形成过程中dNTP以及相应的新型β,γ-CXY-dNTP类似物(包括在桥连碳上具有确定立体化学的单个β,γ-CHF和-CHCl非对映异构体)的掺入速率。利用离去基团双膦酸的log k对pK的布朗斯特图来探究碱基身份、dNTP类似物离去基团碱性以及R和S立体异构体中C-X原子的精确构型对速率决定步骤(k)的影响。dNTP类似物通过在模拟dNTP中天然焦磷酸离去基团的桥连β,γ-双膦酸酯的碳原子上进行单卤代、二卤代或甲基取代,提供了一系列离去基团碱性和空间性质。数据显示出与dGTP和dTTP类似物一样的具有负斜率的布朗斯特图关系,这与TS能量中的键断裂成分一致。然而,线性自由能关系中表现出更大的多样性,揭示了对A和C的核苷酸碱基都有出乎意料的依赖性。调节TS相对于基态能量的强碱依赖性扰动可能源于对pol活性位点催化的静电效应。根据从化学前DNA聚合酶活性位点的结构特征获得的见解,讨论了与均匀线性布朗斯特图关系的偏差。