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Process requirements of galactose oxidase catalyzed oxidation of alcohols

机译:半乳糖氧化酶催化醇氧化的工艺要求

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摘要

Biocatalytic oxidation reactions have the potential to substitute many chemically catalyzed oxidations in the pharmaceutical and fine chemical industry due to their superior regio- and stereoselectivity and low environmental impact. Galactose oxidase (GOase) has been shown to be a promising biocatalyst for the oxidation of primary and secondary alcohols to their corresponding aldehydes and ketones, respectively. However, GOase requires a number of additives to sustain its catalytic function, such as the enzyme catalase for degradation of the byproduct hydrogen peroxide as well as single-electron oxidants to reactivate the enzyme upon loss of the amino acid radical in its active site. In this work, the addition of catalase, single-electron oxidants, and copper ions was investigated systematically in order to find the minimum concentrations required to obtain a fully active GOase. Furthermore, it was found that the concentration and type of buffer is essential for the activity of GOase, which was significantly more active in sodium phosphate buffer than in other buffers investigated. Enzyme stability and oxygen requirements are of crucial importance for the implementation of oxidase based processes. GOase was shown to be completely stable for 120 h in buffer with stirring at 25 °C, and the activity even increased 30% if the enzyme solution was also aerated in a similar experiment. The high for oxygen of GOase (5 mM) relative to the solubility of oxygen in water reveals a trade-off between supplying oxygen at a sufficiently high rate and ensuring a high degree of enzyme utilization (i.e., ensuring the highest possible specific rate of reaction). Nevertheless, the good stability and high activity of GOase bode well for its future application as an industrial biocatalyst.
机译:生物催化氧化反应由于其优越的区域和立体选择性以及对环境的低影响,因此有潜力替代制药和精细化工行业中许多化学催化的氧化反应。半乳糖氧化酶(GOase)已被证明是将伯醇和仲醇分别氧化为相应的醛和酮的一种有前途的生物催化剂。但是,GOase需要许多添加剂来维持其催化功能,例如用于降解副产物过氧化氢的酶过氧化氢酶,以及用于在酶失去活性位点的氨基酸基团时重新活化酶的单电子氧化剂。在这项工作中,系统地研究了过氧化氢酶,单电子氧化剂和铜离子的添加​​情况,以找到获得完全活性的GOase所需的最低浓度。此外,发现缓冲液的浓度和类型对于GOase的活性至关重要,GOase在磷酸钠缓冲液中的活性明显高于其他研究的缓冲液。酶的稳定性和需氧量对于实施基于氧化酶的工艺至关重要。结果表明,在25°C搅拌下,GOase在缓冲液中可完全稳定120小时,如果在类似的实验中对酶溶液也充气,则其活性甚至提高了30%。相对于氧气在水中的溶解度而言,GOase的氧气含量较高(> 5 mM),这表明在以足够高的速率供应氧气与确保高度的酶利用率(即确保尽可能高的比重)之间进行权衡。反应)。尽管如此,GOase的良好稳定性和高活性预示着其未来作为工业生物催化剂的应用。

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