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磷酸丙糖异构酶催化的碳去质子化的机理要求:亚磷酸二阴离子对酶的激活作用。

Mechanistic Imperatives for Deprotonation of Carbon Catalyzed by Triosephosphate Isomerase: Enzyme-Activation by Phosphite Dianion.

作者信息

Zhai Xiang, Malabanan M Merced, Amyes Tina L, Richard John P

机构信息

Department of Chemistry, University at Buffalo, SUNY, Buffalo, NY 14260, USA.

出版信息

J Phys Org Chem. 2014 Apr 1;27(4):269-276. doi: 10.1002/poc.3195.

Abstract

The mechanistic imperatives for catalysis of deprotonation of α-carbonyl carbon by triosephosphate isomerase (TIM) are discussed. There is a strong imperative to reduce the large thermodynamic barrier for deprotonation of carbon to form an enediolate reaction intermediate; and, a strong imperative for specificity in the expression of the intrinsic phosphodianion binding energy at the transition state for the enzyme-catalyzed reaction. Binding energies of 2 and 6 kcal/mol, respectively, have been determined for formation of phosphite dianion complexes to TIM and to the transition state for TIM-catalyzed deprotonation of the truncated substrate glycolaldehyde [T. L. Amyes, J. P. Richard, , , 5841]. We propose that the phosphite dianion binding energy, which is specifically expressed at the transition state complex, is utilized to stabilize a rare catalytically active loop-closed form of TIM. The results of experiments to probe the role of the side chains of Ile172 and Leu232 in activating the loop-closed form of TIM for catalysis of substrate deprotonation are discussed. Evidence is presented that the hydrophobic side chain of Ile172 assists in activating TIM for catalysis of substrate deprotonation through an enhancement of the basicity of the carboxylate side-chain of Glu167. Our experiments link the two imperatives for TIM-catalyzed deprotonation of carbon by providing evidence that the phosphodianion binding energy is utilized to drive an enzyme conformational change, which results in a reduction in the thermodynamic barrier to deprotonation of the carbon acid substrate at TIM compared with the barrier for deprotonation in water. The effects of a P168A mutation on the kinetic parameters for the reactions of whole and truncated substrates are discussed.

摘要

本文讨论了磷酸丙糖异构酶(TIM)催化α-羰基碳去质子化的机制要求。存在着降低碳去质子化形成烯二醇盐反应中间体的巨大热力学势垒的强烈要求;并且,在酶催化反应的过渡态下,存在着特异性表达内在磷酸二阴离子结合能的强烈要求。分别测定了亚磷酸二阴离子与TIM以及与TIM催化截短底物乙醇醛去质子化的过渡态形成配合物的结合能,分别为2千卡/摩尔和6千卡/摩尔[T. L. 艾姆斯,J. P. 理查德,,,5841]。我们提出,在过渡态配合物中特异性表达的亚磷酸二阴离子结合能被用于稳定TIM一种罕见的具有催化活性的环闭合形式。讨论了探究Ile172和Leu232侧链在激活TIM环闭合形式以催化底物去质子化中作用的实验结果。有证据表明,Ile172的疏水侧链通过增强Glu167羧酸盐侧链的碱性来协助激活TIM以催化底物去质子化。我们的实验通过提供证据表明磷酸二阴离子结合能被用于驱动酶构象变化,从而将TIM催化碳去质子化的两个要求联系起来,这导致与水中去质子化势垒相比,TIM处碳酸底物去质子化的热力学势垒降低。讨论了P168A突变对完整和截短底物反应动力学参数的影响。

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