School of Chemistry and Chemical Engineering, Shaanxi Normal University, No. 620 West Chang'an Road, Chang'an District, Xi'an, 710119, People's Republic of China.
College of Chemistry and Chemical Engineering, Xianyang Normal University, Xianyang, 712000, People's Republic of China.
Bioprocess Biosyst Eng. 2019 Jun;42(6):1065-1075. doi: 10.1007/s00449-019-02105-w. Epub 2019 Mar 16.
A multitude of industrial processes are catalyzed by two or more enzymes working together in a cascade way. However, designing efficient enzymatic cascade reactions is still a challenge. In this work, a TiO thin film with mesoporous pores was prepared and used as carrier for co-immobilization of chloroperoxidase (CPO) and glucose peroxidase (GOx). By adjusting the dosage of hexadecyltrimethylammonium bromide (CTAB) and the ratio of the two enzymes, CPO and GOx were well distributed and positional orientated to their own appropriate pores to form an ordered "occupation" based on a "feet in right shoes" effect. Moreover, when the pore size was controlled around 12 nm, the enzymes aggregation was inhibited so as to avoid the decrease of activity of enzyme; The catalytic performance of TiO-GOx and CPO composites was evaluated by the application of decolorization of Orange G dye in a cascaded manner. The oxidant HO needed by CPO is generated in situ through glucose oxidation by GOx. Upon co-immobilization of CPO and GOx on the same carrier, a large increase in the initial catalytic efficiency was detected when compared to an equimolar mixture of the free enzymes, which was four times greater. Moreover, the affinity of the enzyme toward substrate binding was improved according to the kinetic assay. The thermal stability of TiO-GOx and CPO composites were greatly improved than free enzymes. The TiO-GOx and CPO composites can be easily separated from the reaction media which facilitate its recycle use.
许多工业过程是由两种或多种酶以级联方式共同催化的。然而,设计高效的酶级联反应仍然是一个挑战。在这项工作中,制备了具有介孔的 TiO 薄膜,并将其用作共固定化氯过氧化物酶 (CPO) 和葡萄糖氧化酶 (GOx) 的载体。通过调整十六烷基三甲基溴化铵 (CTAB) 的用量和两种酶的比例,CPO 和 GOx 均匀分布并定向到各自合适的孔中,形成基于“合适的鞋子配合适的脚”效应的有序“占据”。此外,当孔径控制在 12nm 左右时,抑制了酶的聚集,从而避免了酶活性的降低;通过级联方式应用橙色 G 染料的脱色来评估 TiO-GOx 和 CPO 复合材料的催化性能。CPO 所需的氧化剂 HO 通过 GOx 氧化葡萄糖原位生成。在相同载体上共固定化 CPO 和 GOx 时,与游离酶等摩尔混合物相比,初始催化效率大大提高,提高了四倍。此外,根据动力学测定,酶对底物结合的亲和力得到了提高。TiO-GOx 和 CPO 复合材料的热稳定性得到了极大的提高,比游离酶提高了很多。TiO-GOx 和 CPO 复合材料可以很容易地从反应介质中分离出来,便于其回收利用。