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通过镍配位组装具有增强稳定性和可重复使用性的氧化石墨烯-甲酸脱氢酶复合材料。

Assembly of graphene oxide-formate dehydrogenase composites by nickel-coordination with enhanced stability and reusability.

作者信息

Lin Peng, Zhang Yonghui, Ren Hong, Wang Yixuan, Wang Shizhen, Fang Baishan

机构信息

Department of Chemical and Biochemical Engineering, College of Chemistry and Chemical Engineering Xiamen University Xiamen Fujian P. R. China.

The Key Lab for Synthetic Biotechnology of Xiamen City Xiamen University Xiamen Fujian P. R. China.

出版信息

Eng Life Sci. 2018 Feb 22;18(5):326-333. doi: 10.1002/elsc.201700137. eCollection 2018 May.

Abstract

Featuring unique planar structure, large surface area and biocompatibility, graphene oxide (GO) has been widely taken as an ideal scaffold for the immobilization of various enzymes. In this regard, nickel-coordinated graphene oxide composites (GO-Ni) were prepared as novel supporters for the immobilization of formate dehydrogenase. The catalytic activity, stability and morphology were studied. Compared with GO, the enzyme loading capacity of GO-Ni was enhanced by 5.2-fold, besides the immobilized enzyme GO-Ni-FDH exhibited better thermostability, storage stability and reuse stability than GO-FDH. GO-Ni-FDH retained 40.9% of its initial activity after 3 h at 60°C, and retained 31.4% of its initial relative activity after 20 days' storage at 4°C. After eight times usages, GO-Ni-FDH maintained 63.8% of its initial activity. Mechanism insights of the multiple interactions of enzyme with the GO-Ni were studied, considering coordination bonds, hydrogen bonds, electrostatic forces, coordination bonds, and etc. A practical and simple immobilization strategy by metal ions coordination for multimeric dehydrogenase was developed.

摘要

氧化石墨烯(GO)具有独特的平面结构、大表面积和生物相容性,已被广泛用作固定各种酶的理想支架。在此方面,制备了镍配位氧化石墨烯复合材料(GO-Ni)作为固定甲酸脱氢酶的新型载体。研究了其催化活性、稳定性和形态。与GO相比,GO-Ni的酶负载能力提高了5.2倍,此外,固定化酶GO-Ni-FDH比GO-FDH表现出更好的热稳定性、储存稳定性和重复使用稳定性。GO-Ni-FDH在60°C下3小时后保留了其初始活性的40.9%,在4°C下储存20天后保留了其初始相对活性的31.4%。经过八次使用后,GO-Ni-FDH保持了其初始活性的63.8%。考虑到配位键、氢键、静电力等,研究了酶与GO-Ni多重相互作用的机制。开发了一种通过金属离子配位固定多聚体脱氢酶的实用且简单的固定策略。

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