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聚腺苷酸聚合酶机制中的质子转移

Proton transfer in the mechanism of polyadenylate polymerase.

作者信息

Balbo Paul B, Bohm Andrew

机构信息

Tufts University School of Medicine and the Sackler School of Graduate Biomedical Sciences, Department of Biochemistry, Boston, MA 02111, USA.

出版信息

Biochem J. 2009 May 13;420(2):229-38. doi: 10.1042/BJ20082019.

Abstract

PAP (polyadenylate polymerase) is the template-independent RNA polymerase responsible for synthesis of the 3' poly(A) tails of mRNA. To investigate the role of proton transfer in the catalytic mechanism of PAP, the pH dependence of the steady-state kinetic parameters of yeast PAP were determined for the forward (adenyl transfer) and reverse (pyrophosphorolysis) reactions. The results indicate that productive formation of an enzyme-RNA-MgATP complex is pH independent over a broad pH range, but that formation of an active enzyme-RNA-MgPPi complex is strongly pH dependent, consistent with the production of a proton on the enzyme in the forward reaction. The pH dependence of the maximum velocity of the forward reaction suggests two protonic species are involved in enzyme catalysis. Optimal enzyme activity requires one species to be protonated and the other deprotonated. The deuterium solvent isotope effect on Vmax is also consistent with proton transfer involved in catalysis of a rate-determining step. Finally, pKa calculations of PAP were performed by the MCCE (multiconformational continuum electrostatic) method. Together, the data support that the protonation of residues Lys215 and Tyr224 exhibit co-operativity that is important for MgATP2- and MgPPi2- binding/dissociation, and suggest these residues function in electrostatic, but not in general acid, catalysis.

摘要

聚腺苷酸聚合酶(PAP)是一种不依赖模板的RNA聚合酶,负责合成mRNA的3' 聚(A)尾。为了研究质子转移在PAP催化机制中的作用,我们测定了酵母PAP在正向(腺苷酸转移)和反向(焦磷酸解)反应中稳态动力学参数的pH依赖性。结果表明,在较宽的pH范围内,酶-RNA-MgATP复合物的有效形成与pH无关,但活性酶-RNA-MgPPi复合物的形成强烈依赖于pH,这与正向反应中酶上产生质子一致。正向反应最大速度的pH依赖性表明,有两种质子形式参与酶催化。最佳酶活性要求一种形式质子化,另一种形式去质子化。氘溶剂同位素效应在Vmax上也与速率决定步骤催化中涉及的质子转移一致。最后,通过多构象连续静电(MCCE)方法对PAP进行了pKa计算。综合来看,这些数据支持赖氨酸215和酪氨酸224残基的质子化表现出协同作用,这对MgATP2-和MgPPi2-的结合/解离很重要,并表明这些残基在静电催化而非一般酸催化中起作用。

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