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Crystal Structure, SAXS and Kinetic Mechanism of Hyperthermophilic ADP-Dependent Glucokinase from Thermococcus litoralis Reveal a Conserved Mechanism for Catalysis

机译:嗜热球菌嗜热性ADP依赖的葡萄糖激酶的晶体结构,SAXS和动力学机理揭示了催化的保守机制。

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摘要

[EN]ADP-dependent glucokinases represent a unique family of kinases that belong to the ribokinase superfamily, being present mainly in hyperthermophilic archaea. For these enzymes there is no agreement about the magnitude of the structural transitions associated with ligand binding and whether they are meaningful to the function of the enzyme. We used the ADP-dependent glucokinase from Termococcus litoralis as a model to investigate the conformational changes observed in X-ray crystallographic structures upon substrate binding and to compare them with those determined in solution in order to understand their interplay with the glucokinase function. Initial velocity studies indicate that catalysis follows a sequential ordered mechanism that correlates with the structural transitions experienced by the enzyme in solution and in the crystal state. The combined data allowed us to resolve the open-closed conformational transition that accounts for the complete reaction cycle and to identify the corresponding clusters of aminoacids residues responsible for it. These results provide molecular bases for a general mechanism conserved across the ADP-dependent kinase family
机译:[EN] ADP依赖性葡萄糖激酶代表一个独特的激酶家族,属于核糖激酶超家族,主要存在于嗜热古细菌中。对于这些酶,关于与配体结合相关的结构转变的幅度以及它们是否对酶的功能有意义,尚无共识。我们使用来自滨海Termococcus litoralis的ADP依赖性葡萄糖激酶作为模型,研究底物结合后在X射线晶体学结构中观察到的构象变化,并将其与溶液中测定的构象变化进行比较,以了解它们与葡萄糖激酶功能的相互作用。最初的速度研究表明,催化遵循顺序有序的机制,该机制与酶在溶液和晶体状态下经历的结构转变有关。合并的数据使我们能够解决导致整个反应周期的开闭构象转变,并确定负责该反应的氨基酸残基的相应簇。这些结果为整个ADP依赖性激酶家族保守的一般机制提供了分子基础

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