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Mutation of outer-shell residues modulates metal ion co-ordination strength in a metalloenzyme

机译:外壳残基的突变调节金属酶中的金属离子配位强度

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pThe metal ion co-ordination sites of many metalloproteins have been characterized by a variety of spectroscopic techniques and small-molecule model systems, revealing many important insights into the structural determinants of metal ion co-ordination. However, our understanding of this fundamentally and practically important phenomenon remains frustratingly simplistic; in many proteins it is essentially impossible to predict metal ion specificity and the effects of remote ‘outer-shell’ residues on metal ion co-ordination strength are also poorly defined. This is exemplified by our inability to explain why metalloenzymes with identical metal ion co-ordination spheres, such as the closely related orthologues of bacterial PTE (phosphotriesterase) from iAgrobacterium radiobacter/i and iPseudomonas diminuta/i, display different metal ion specificity and co-ordination strength. In the present study, we present a series of PTE variants that all possess identical metal ion co-ordination spheres, yet display large differences in their metal ion co-ordination strength. Using measurement of the rates of metal ion dissociation from the active site alongside analysis of structural data obtained through X-ray crystallography, we show that ‘outer-shell’ residues provide essential support for the metal ion ligands, in effect buttressing them in their optimal orientation. Remote mutations appear to modulate metal ion interactions by increasing or decreasing the stabilizing effects of these networks. The present study therefore provides a description of how the greater protein fold can be modified to ‘tune’ the strength of metal ion co-ordination and metal ion specificity, as well as reinforcing the concept of proteins as ensembles of conformational states with unique structures and biochemical properties./p
机译:>许多金属蛋白的金属离子配位位点已通过多种光谱技术和小分子模型系统进行了表征,揭示了对金属离子配位的结构决定因素的许多重要见解。但是,我们对这一从根本上和实际上很重要的现象的理解仍然令人沮丧地简单化。在许多蛋白质中,基本上不可能预测金属离子的特异性,并且远端的“外壳”残基对金属离子配位强度的影响也很难确定。我们无法解释为什么金属酶具有相同的金属离子配位球,这就是一个例证,例如,放射农杆菌和假单胞菌假单胞菌细菌PTE(磷酸三酯酶)的直系同源物>,显示出不同的金属离子特异性和配位强度。在本研究中,我们介绍了一系列PTE变体,它们都具有相同的金属离子配位球,但在金属离子配位强度上却显示出很大的差异。使用对金属离子从活性位点解离的速率的测量,以及对通过X射线晶体学获得的结构数据的分析,我们表明“外壳”残基为金属离子配体提供了必要的支持,从而有效地支撑了它们的最佳状态。方向。远程突变似乎通过增加或减少这些网络的稳定作用来调节金属离子相互作用。因此,本研究描述了如何修饰更大的蛋白质折叠以“调节”金属离子配位和金属离子特异性的强度,以及如何增强蛋白质的构想,即构象态具有独特的结构和结构。生化特性。

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