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Characterization of a whole-cell catalyst co-expressing glycerol dehydrogenase and glucose dehydrogenase and its application in the synthesis of L-glyceraldehyde

机译:共表达甘油脱氢酶和葡萄糖脱氢酶的全细胞催化剂的表征及其在L-甘油醛合成中的应用

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A whole-cell catalyst using Escherichia coli BL21(DE3) as a host, co-expressing glycerol dehydrogenase (GlyDH) from Gluconobacter oxydans and glucose dehydrogenase (GDH) from Bacillus subtilis for cofactor regeneration, has been successfully constructed and used for the reduction of aliphatic aldehydes, such as hexanal or glyceraldehyde to the corresponding alcohols. This catalyst was characterized in terms of growth conditions, temperature and pH dependency, and regarding the influence of external cofactor and permeabilization. In the case of external cofactor addition we found a 4.6-fold increase in reaction rate caused by the addition of 1mM NADP~+. Due to the fact that pH and temperature are also factors which may affect the reaction rate, their effect on the whole-cell catalyst was studied as well. Comparative studies between the whole-cell catalyst and the cell-free system were investigated. Furthermore, the successful application of the whole-cell catalyst in repetitive batch conversions could be demonstrated in the present study. Since the GlyDH was recently characterized and successfully applied in the kinetic resolution of racemic glyceraldehyde, we were now able to transfer and establish the process to a whole-cell system, which facilitated the access to L-glyceraldehyde in high enantioselectivity at 54% conversion. All in all, the whole-cell catalyst shows several advantages over the cell-free system like a higher thermal, a similar operational stability and the ability to recycle the catalyst without any loss-of-activity. The results obtained making the described whole-cell catalyst an improved catalyst for a more efficient production of enantiopure L-glyceraldehyde.
机译:已成功构建了以大肠杆菌BL21(DE3)为宿主,共表达氧化葡糖杆菌的甘油脱氢酶(GlyDH)和枯草芽孢杆菌的葡萄糖脱氢酶(GDH)进行辅因子再生的全细胞催化剂,并将其用于还原脂肪醛,例如己醛或甘油醛,形成相应的醇。根据生长条件,温度和pH依赖性以及外部辅因子和通透性的影响来表征该催化剂。在添加外部辅因子的情况下,我们发现由于添加1mM NADP〜+而引起的反应速率提高了4.6倍。由于pH和温度也是可能影响反应速率的因素,因此也研究了它们对全细胞催化剂的影响。研究了全细胞催化剂与无细胞体系之间的比较研究。此外,本研究可以证明全细胞催化剂在重复批量转化中的成功应用。由于最近对GlyDH进行了表征并成功应用于外消旋甘油醛的动力学拆分,我们现在能够将其转移并建立到全细胞系统的过程,从而促进了54%转化率下以高对映选择性获得L-甘油醛。总而言之,与无电池系统相比,全电池催化剂显示出多个优势,例如更高的热稳定性,类似的运行稳定性以及在不损失任何活性的情况下循环使用催化剂的能力。得到的结果使所述的全细胞催化剂成为改进的催化剂,用于更有效地生产对映纯的L-甘油醛。

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