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Systematic Functional Analysis of Active-Site Residuesin l-Threonine Dehydrogenase from Thermoplasmavolcanium

机译:活性残留物的系统功能分析疟原虫l-苏氨酸脱氢酶的合成火山

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摘要

Enzymes have been through millions of years of evolution during which their active-site microenvironments are fine-tuned. Active-site residues are commonly conserved within protein families, indicating their importance for substrate recognition and catalysis. In this work, we systematically mutated active-site residues of l-threonine dehydrogenase from Thermoplasma volcanium and characterized the mutants against a panel of substrate analogs. Our results demonstrate that only a subset of these residues plays an essential role in substrate recognition and catalysis and that the native enzyme activity can be further enhanced roughly 4.6-fold by a single point mutation. Kinetic characterization of mutants on substrate analogs shows that l-threonine dehydrogenase possesses promiscuous activities toward other chemically similar compounds not previously observed. Quantum chemical calculations on the hydride-donating ability of these substrates also reveal that this enzyme did not evolve to harness the intrinsic substrate reactivity for enzyme catalysis. Our analysis provides insights into connections between the details of enzyme active-site structure and specific function. These resultsare directly applicable to rational enzyme design and engineering.
机译:酶已经经历了数百万年的演变,在此过程中对其活性部位的微环境进行了微调。活性位点残基通常在蛋白质家族中保守,表明它们对于底物识别和催化的重要性。在这项工作中,我们系统地突变了来自Thermoplasma volcanium的l-苏氨酸脱氢酶的活性位点残基,并针对一组底物类似物表征了该突变体。我们的结果表明,这些残基中只有一部分在底物识别和催化中起着至关重要的作用,并且通过单点突变可以将天然酶活性进一步提高约4.6倍。底物类似物上突变体的动力学表征表明,L-苏氨酸脱氢酶对其他先前未观察到的化学相似化合物具有混杂活性。关于这些底物的氢化物给体能力的量子化学计算也揭示了该酶并未进化以利用固有的底物反应性进行酶催化。我们的分析提供了有关酶活性位点结构细节与特定功能之间联系的见解。这些结果直接适用于合理的酶设计和工程。

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