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柠檬酸合酶中乙酰辅酶A的烯醇化:一项量子力学/分子力学(QM/MM)研究。

Acetyl-CoA enolization in citrate synthase: a quantum mechanical/molecular mechanical (QM/MM) study.

作者信息

Mulholland A J, Richards W G

机构信息

Physical and Theoretical Chemistry Laboratory, Oxford University, United Kingdom.

出版信息

Proteins. 1997 Jan;27(1):9-25.

PMID:9037708
Abstract

Citrate synthase forms citrate by deprotonation of acetyl-CoA followed by nucleophilic attack of this substrate on oxaloacetate, and subsequent hydrolysis. The rapid reaction rate is puzzling because of the instability of the postulated nucleophilic intermediate, the enolate of acetyl-CoA. As alternatives, the enol of acetyl-CoA, or an enolic intermediate sharing a proton with His-274 in a "low-barrier" hydrogen bond have been suggested. Similar problems of intermediate instability have been noted in other enzymic carbon acid deprotonation reactions. Quantum mechanical/molecular mechanical calculations of the pathway of acetyl-CoA enolization within citrate synthase support the identification of Asp-375 as the catalytic base. His-274, the proposed general acid, is found to be neutral. The acetyl-CoA enolate is more stable at the active site than the enol, and is stabilized by hydrogen bonds from His-274 and a water molecule. The conditions for formation of a low-barrier hydrogen bond do not appear to be met, and the calculated hydrogen bond stabilization in the reaction is less than the gas-phase energy, due to interactions with Asp-375 at the active site. The enolate character of the intermediate is apparently necessary for the condensation reaction to proceed efficiently.

摘要

柠檬酸合酶通过使乙酰辅酶A去质子化,然后使该底物对草酰乙酸进行亲核攻击,随后水解来形成柠檬酸。由于假定的亲核中间体——乙酰辅酶A的烯醇负离子不稳定,其快速反应速率令人费解。作为替代方案,有人提出了乙酰辅酶A的烯醇,或在“低势垒”氢键中与His-274共享一个质子的烯醇中间体。在其他酶促碳酸去质子化反应中也注意到了类似的中间体不稳定问题。对柠檬酸合酶内乙酰辅酶A烯醇化途径的量子力学/分子力学计算支持将Asp-375鉴定为催化碱。所提出的广义酸His-274被发现呈中性。乙酰辅酶A的烯醇负离子在活性位点比烯醇更稳定,并通过来自His-274和一个水分子的氢键得以稳定。形成低势垒氢键的条件似乎未得到满足,并且由于与活性位点的Asp-375相互作用,计算得出的反应中氢键稳定化小于气相能量。中间体的烯醇负离子特征显然是缩合反应高效进行所必需的。

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