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磷酸烯醇式丙酮酸羧激酶的Ω环盖结构域对于催化功能至关重要。

The Ω-loop lid domain of phosphoenolpyruvate carboxykinase is essential for catalytic function.

机构信息

Department of Biochemistry and Molecular Biology, The University of Kansas Medical Center, Kansas City, KS 66160, USA.

出版信息

Biochemistry. 2012 Nov 27;51(47):9547-59. doi: 10.1021/bi301278t. Epub 2012 Nov 14.

DOI:10.1021/bi301278t
PMID:23127136
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3525453/
Abstract

Phosphoenolpyruvate carboxykinase (PEPCK) is an essential metabolic enzyme operating in the gluconeogenesis and glyceroneogenesis pathways. Recent studies have demonstrated that the enzyme contains a mobile active site lid domain that undergoes a transition between an open, disorded conformation and a closed, ordered conformation as the enzyme progresses through the catalytic cycle. The understanding of how this mobile domain functions in catalysis is incomplete. Previous studies showed that the closure of the lid domain stabilizes the reaction intermediate and protects the reactive intermediate from spurious protonation and thus contributes to the fidelity of the enzyme. To more fully investigate the roles of the lid domain in PEPCK function, we introduced three mutations that replaced the 11-residue lid domain with one, two, and three glycine residues. Kinetic analysis of the mutant enzymes demonstrates that none of the enzyme constructs exhibit any measurable kinetic activity, resulting in a decrease in the catalytic parameters of at least 10(6). Structural characterization of the mutants in complexes representing the catalytic cycle suggests that the inactivity is due to a role for the lid domain in the formation of the fully closed state of the enzyme that is required for catalytic function. In the absence of the lid domain, the enzyme is unable to achieve the fully closed state and is rendered inactive despite possessing all of the residues and substrates required for catalytic function. This work demonstrates how enzyme catalytic function can be abolished through the alteration of conformational equilibria despite all the elements required for chemical conversion of substrates to products remaining intact.

摘要

磷酸烯醇式丙酮酸羧激酶(PEPCK)是一种在糖异生和甘油异生途径中起关键作用的代谢酶。最近的研究表明,该酶含有一个可移动的活性位点盖结构域,在酶催化循环中,该结构域经历从开放、无序构象到关闭、有序构象的转变。目前,对于该移动结构域在催化中的作用机制尚不完全清楚。先前的研究表明,盖结构域的关闭稳定了反应中间物,并防止了反应中间物的错误质子化,从而提高了酶的准确性。为了更全面地研究盖结构域在 PEPCK 功能中的作用,我们引入了三个突变,用一个、两个和三个甘氨酸残基取代了 11 个残基的盖结构域。对突变酶的动力学分析表明,这些酶的构象都没有表现出任何可测量的动力学活性,导致催化参数至少降低了 10^6。对代表催化循环的突变体复合物的结构特征分析表明,这种无活性是由于盖结构域在酶的完全关闭状态形成中发挥了作用,而这种完全关闭状态是催化功能所必需的。在没有盖结构域的情况下,酶无法达到完全关闭状态,尽管具有催化功能所需的所有残基和底物,但仍无法发挥作用。这项工作表明,尽管所有将底物转化为产物的化学转换所需的元素都保持完整,但通过改变构象平衡,仍可使酶的催化功能丧失。

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