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Catalytic mechanism of Zn2+-dependent polyol dehydrogenases: kinetic comparison of sheep liver sorbitol dehydrogenase with wild-type and Glu154→Cys forms of yeast xylitol dehydrogenase

机译:Zn2 +依赖的多元醇脱氢酶的催化机制:羊肝山梨醇脱氢酶与野生型和Glu154→Cys形式的酵母木糖醇脱氢酶的动力学比较

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摘要

Co-ordination of catalytic Zn2+ in sorbitol/xylitol dehydrogenases of the medium-chain dehydrogenase/reductase superfamily involves direct or water-mediated interactions from a glutamic acid residue, which substitutes a homologous cysteine ligand in alcohol dehydrogenases of the yeast and liver type. Glu154 of xylitol dehydrogenase from the yeast Galactocandida mastotermitis (termed GmXDH) was mutated to a cysteine residue (E154C) to revert this replacement. In spite of their variable Zn2+ content (0.10–0.40 atom/subunit), purified preparations of E154C exhibited a constant catalytic Zn2+ centre activity (kcat) of 1.19±0.03 s−1 and did not require exogenous Zn2+ for activity or stability. E154C retained 0.019±0.003% and 0.74±0.03% of wild-type catalytic efficiency (kcat/Ksorbitol=7800±700 M−1· s−1) and kcat (=161±4 s−1) for NAD+-dependent oxidation of sorbitol at 25 °C respectively. The pH profile of kcat/Ksorbitol for E154C decreased below an apparent pK of 9.1±0.3, reflecting a shift in pK by about +1.7–1.9 pH units compared with the corresponding pH profiles for GmXDH and sheep liver sorbitol dehydrogenase (termed slSDH). The difference in pK for profiles determined in 1H2O and 2H2O solvent was similar and unusually small for all three enzymes (≈+0.2 log units), suggesting that the observed pK in the binary enzyme–NAD+ complexes could be due to Zn2+-bound water. Under conditions eliminating their different pH-dependences, wild-type and mutant GmXDH displayed similar primary and solvent deuterium kinetic isotope effects of 1.7±0.2 (E154C, 1.7±0.1) and 1.9±0.3 (E154C, 2.4±0.2) on kcat/Ksorbitol respectively. Transient kinetic studies of NAD+ reduction and proton release during sorbitol oxidation by slSDH at pH 8.2 show that two protons are lost with a rate constant of 687±12 s−1 in the pre-steady state, which features a turnover of 0.9±0.1 enzyme equivalents as NADH was produced with a rate constant of 409±3 s−1. The results support an auxiliary participation of Glu154 in catalysis, and possible mechanisms of proton transfer in sorbitol/xylitol dehydrogenases are discussed.
机译:中链脱氢酶/还原酶超家族的山梨糖醇/木糖醇脱氢酶中催化性Zn2 +的配位涉及谷氨酸残基的直接或水介导的相互作用,该残基取代了酵母和肝脏类型的酒精脱氢酶中的同型半胱氨酸配体。将来自酵母乳球菌乳腺炎的木糖醇脱氢酶的Glu154(称为GmXDH)突变为半胱氨酸残基(E154C)以恢复该替换。尽管其Zn2 +含量可变(0.10-0.40原子/亚基),纯化的E154C制剂仍具有1.19±0.03s-1的恒定催化Zn2 +中心活性(kcat),并且不需要外源Zn2 +即可获得活性或稳定性。 E154C保留了野生型催化效率(kcat /山梨糖醇= 7800±700 M-1·s-1)和kcat(= 161±4 s-1)的0.019±0.003%和0.74±0.03%用于NAD +依赖的氧化山梨糖醇分别在25°C下使用。对于E154C,kcat /山梨糖醇的pH值降低到9.1±0.3的表观pK以下,这反映了与GmXDH和绵羊肝山梨糖醇脱氢酶(称为slSDH)的相应pH值相比,pK的变化约为+ 1.7-1.9 pH单位。在1H2O和2H2O溶剂中测定的谱图的pK差异相似,并且对于所有三种酶而言都异常小(≈+ 0.2 log单位),这表明在二元酶-NAD +复合物中观察到的pK可能是由于结合了Zn2 +的水。在消除它们不同的pH依赖性的条件下,野生型和突变体GmXDH对kcat /山梨糖醇表现出相似的一级和溶剂氘动力学同位素效应,分别为1.7±0.2(E154C,1.7±0.1)和1.9±0.3(E154C,2.4±0.2)分别。在pH值为8.2时通过slSDH在山梨醇氧化过程中对NAD +还原和质子释放进行的瞬态动力学研究表明,在稳态前,两个质子以687±12 s-1的速率常数丢失,质子交换率为0.9±0.1产生了与NADH相当的当量,速率常数为409±3 s-1。结果支持Glu154催化的辅助参与,并讨论了山梨醇/木糖醇脱氢酶中质子转移的可能机制。

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