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绿藻病毒 DNA 连接酶催化 DNA 链连接的动力学分析及核苷酸转移酶基序 VI 在连接酶腺苷酰化中的作用。

Kinetic analysis of DNA strand joining by Chlorella virus DNA ligase and the role of nucleotidyltransferase motif VI in ligase adenylylation.

机构信息

Molecular Biology Program, Sloan-Kettering Institute, New York, New York 10065, USA.

出版信息

J Biol Chem. 2012 Aug 17;287(34):28609-18. doi: 10.1074/jbc.M112.380428. Epub 2012 Jun 28.

Abstract

Chlorella virus DNA ligase (ChVLig) is an instructive model for mechanistic studies of the ATP-dependent DNA ligase family. ChVLig seals 3'-OH and 5'-PO(4) termini via three chemical steps: 1) ligase attacks the ATP α phosphorus to release PP(i) and form a covalent ligase-adenylate intermediate; 2) AMP is transferred to the nick 5'-phosphate to form DNA-adenylate; 3) the 3'-OH of the nick attacks DNA-adenylate to join the polynucleotides and release AMP. Each chemical step requires Mg(2+). Kinetic analysis of nick sealing by ChVLig-AMP revealed that the rate constant for phosphodiester synthesis (k(step3) = 25 s(-1)) exceeds that for DNA adenylylation (k(step2) = 2.4 s(-1)) and that Mg(2+) binds with similar affinity during step 2 (K(d) = 0.77 mM) and step 3 (K(d) = 0.87 mM). The rates of DNA adenylylation and phosphodiester synthesis respond differently to pH, such that step 3 becomes rate-limiting at pH ≤ 6.5. The pH profiles suggest involvement of one and two protonation-sensitive functional groups in catalysis of steps 2 and 3, respectively. We suggest that the 5'-phosphate of the nick is the relevant protonation-sensitive moiety and that a dianionic 5'-phosphate is necessary for productive step 2 catalysis. Motif VI, located at the C terminus of the OB-fold domain of ChVLig, is a conserved feature of ATP-dependent DNA ligases and GTP-dependent mRNA capping enzymes. Presteady state and burst kinetic analysis of the effects of deletion and missense mutations highlight the catalytic contributions of ChVLig motif VI, especially the Asp-297 carboxylate, exclusively during the ligase adenylylation step.

摘要

小球藻病毒 DNA 连接酶(ChVLig)是研究 ATP 依赖型 DNA 连接酶家族的机制模型。ChVLig 通过三个化学步骤封闭 3'-OH 和 5'-PO(4)末端:1)连接酶攻击 ATP α 磷以释放 PP(i)并形成共价连接酶-腺苷酸中间物;2)AMP 转移到缺口 5'-磷酸以形成 DNA-腺苷酸;3)缺口的 3'-OH 攻击 DNA-腺苷酸以连接多核苷酸并释放 AMP。每个化学步骤都需要 Mg(2+)。通过 ChVLig-AMP 对缺口封闭的动力学分析表明,磷酸二酯合成的速率常数(k(step3) = 25 s(-1))超过 DNA 腺苷酸化的速率常数(k(step2) = 2.4 s(-1)),并且 Mg(2+)在步骤 2(K(d) = 0.77 mM)和步骤 3(K(d) = 0.87 mM)中具有相似的亲和力结合。DNA 腺苷酸化和磷酸二酯合成的速率对 pH 的响应不同,使得步骤 3 在 pH ≤ 6.5 时成为限速步骤。pH 曲线表明,步骤 2 和步骤 3 的催化分别涉及一个和两个质子敏感功能基团。我们认为缺口的 5'-磷酸是相关的质子敏感部分,并且二价阴离子 5'-磷酸对于有性步骤 2 的催化是必需的。ChVLig 结构域的 OB 折叠 C 末端的 motif VI 是 ATP 依赖型 DNA 连接酶和 GTP 依赖型 mRNA 加帽酶的保守特征。删除和错义突变的预稳态和爆发动力学分析突出了 ChVLig motif VI 的催化贡献,尤其是 Asp-297 羧酸盐,仅在连接酶腺苷酸化步骤中起作用。

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