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Investigation of Catalytic Loop Structure Dynamics and Function Relationship of Yersinia Protein Tyrosine Phosphatase by Temperature-Jump Relaxation Spectroscopy and X-ray Structural Determination

机译:温度跳高光谱和X射线结构测定yersinia蛋白酪氨酸磷酸酶催化环结构动力学和功能关系的研究

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摘要

Yersinia Protein Tyrosine Phosphatase (YopH) is the most efficient enzyme amongst all PTPases and YopH is hyperactive compared to human PTPases, interferes with mammalian cellular pathways to achieve the pathogenicity of Yersinia. Two properties related to the catalytic loop structure differences have been proposed to affect its dynamics and enzyme efficiency. One is the ability of the loop to form stabilizing interactions to bound ligand after loop closure, which has long been recognized. In addition, the loop flexibility/mobility was suggested in a previous study to be a factor as well, based on the observation that incremental changes in PTPase loop structure by single point mutations to alanine often induce incremental changes in enzyme catalytic efficiency. In this study, the temperature jump relaxation spectroscopy (T-jump) has been used to discern the subtle changes of the loop dynamics due to point loop mutations. As expected, our results suggest a correlation between loop dynamics and the size of the residue on the catalytic loop. The stabilization of the enzyme-ligand complex is often enthalpy driven, achieved by formation of additional favorable hydrogen bonding/ionic interactions after loop closure. Interestingly, our T-jump and X-ray crystallography studies on YopH suggest that the elimination of some ligand-protein interactions by mutation does not necessarily destabilize the ligand-enzyme complex after loop closure since the increased entropy in the forms of more mobile protein residues may be sufficient to compensate the free energy loss due to lost interactions and may even lead to enhanced efficiency of the enzyme catalysis. How these competing loop properties may affect loop dynamics and enzyme function are discussed.
机译:yersinia蛋白酪氨酸磷酸酶(Yoph)是所有PTPAses和Yoph与人类ptpases相比过度活跃的酶,干扰哺乳动物细胞途径以实现yersinia的致病性。已经提出了两个与催化环结构差异有关的性质,以影响其动力学和酶效率。一种是环形以在环闭合后形成与结合配体的相互作用的能力,这已经很久被识别出来。此外,在先前的研究中提出了环形柔韧性/迁移率,这也是一个因素,也是一种因素,也基于观察到通过单点突变对丙氨酸的单点突变的增量变化进行丙氨酸的增量变化通常诱导酶催化效率的增量变化。在该研究中,温度跳高谱谱(T-跳跃)已被用于辨别由于点环突变引起的环路动力学的微妙变化。正如预期的那样,我们的结果表明环形动力学与催化环中残余物的尺寸之间的相关性。酶 - 配体络合物的稳定化通常是焓驱动,通过在环闭合后形成额外的有利氢键/离子相互作用来实现。有趣的是,我们对Yoph的T跳和X射线晶体学研究表明,消除突变的一些配体 - 蛋白质相互作用并不一定使得在环闭合后的配体 - 酶复合物变得破坏,因为更多的流动蛋白质残留物的形式增加熵可能足以补偿由于相互作用损失而自由能量损失,甚至可能导致酶催化的提高效率。如何讨论这些竞争循环属性可能影响环路动力学和酶功能。

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