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Cloning, Expression, and Purification of Choline Dehydrogenase from the Moderate Halophile Halomonas elongata

机译:中度嗜盐嗜盐菌中胆碱脱氢酶的克隆,表达及纯化

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摘要

Choline dehydrogenase (EC 1.1.99.1) catalyzes the four-electron oxidation of choline to glycine-betaine via a betaine-aldehyde intermediate. Such a reaction is of considerable interest for biotechnological applications in that transgenic plants engineered with bacterial glycine-betaine-synthesizing enzymes have been shown to have enhanced tolerance towards various environmental stresses, such as hypersalinity, freezing, and high temperatures. To date, choline dehydrogenase has been poorly characterized in its biochemical and kinetic properties, mainly because its purification has been hampered by instability of the enzyme in vitro. In the present report, we cloned and expressed in Escherichia coli the betA gene from the moderate halophile Halomonas elongata which codes for a hypothetical choline dehydrogenase. The recombinant enzyme was purified to more than 70% homogeneity as judged by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and by treatment with 30 to 50% saturation of ammonium sulfate followed by column chromatography using DEAE-Sepharose. The purified enzyme showed similar substrate specificities with either choline or betaine-aldehyde as the substrate, as indicated by the apparent V/K values (where V is the maximal velocity and K is the Michaelis constant) of 0.9 and 0.6 μmol of O2 min−1 mg−1 mM−1 at pH 7 and 25°C, respectively. With 1 mM phenazine methosulfate as the primary electron acceptor, the apparent Vmax values for choline and betaine-aldehyde were 10.9 and 5.7 μmol of O2 min−1 mg−1, respectively. These Vmax values decreased four- to sevenfold when molecular oxygen was used as the electron acceptor. Altogether, the kinetic data are consistent with the conclusion that H. elongata betA codes for a choline dehydrogenase that can also act as an oxidase when electron acceptors other than molecular oxygen are not available.
机译:胆碱脱氢酶(EC 1.1.99.1)通过甜菜碱-醛中间体催化胆碱四电子氧化为甘氨酸-甜菜碱。对于生物技术应用来说,这种反应是相当感兴趣的,因为已经证明用细菌甘氨酸-甜菜碱合成酶改造的转基因植物对各种环境胁迫如高盐度,冷冻和高温具有增强的耐受性。迄今为止,胆碱脱氢酶在其生化和动力学特性上的表征很差,这主要是因为其纯化受到体外酶的不稳定性的影响。在本报告中,我们在大肠杆菌中克隆并表达了来自中等嗜盐菌Halomonas elongata的betA基因,该基因编码一种假设的胆碱脱氢酶。通过十二烷基硫酸钠-聚丙烯酰胺凝胶电泳和用30%至50%饱和硫酸铵处理,然后使用DEAE-Sepharose进行柱色谱分析,将重组酶纯化至70%以上的同质性。纯化的酶显示出相似的底物特异性,其中胆碱或甜菜碱-醛为底物,如表观的V / K值(其中V为最大速度,K为米氏常数)所示,O2 min-为0.9和0.6μmol在pH 7和25°C下分别为1 mg-1 mM-1。以1 mM吩嗪硫酸甲酯为主要电子受体,胆碱和甜菜碱醛的表观Vmax值分别为O2 min-1 mg-1的10.9和5.7μmol。当分子氧用作电子受体时,这些Vmax值降低了四到七倍。总之,动力学数据与以下结论是一致的:伸长的长杆菌betA编码胆碱脱氢酶,当除分子氧以外的电子受体不存在时,胆碱脱氢酶也可以充当氧化酶。

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