Department of Biochemistry, P.D. Patel Institute of Applied Sciences, CHARUSAT, Changa, 388421, Gujarat, India.
Department of Advance Organic Chemistry, P.D. Patel Institute of Applied Sciences, CHARUSAT, Changa, 388421, Gujarat, India.
Enzyme Microb Technol. 2017 Dec;107:49-56. doi: 10.1016/j.enzmictec.2017.08.003. Epub 2017 Aug 10.
D-Psicose (D-ribo-2-hexulose or D-allulose), an epimer of D-fructose is considered as a rare low-calorie sugar displaying important physiological functions. Enzymatic production using ketose 3-epimerases is the feasible process for the production of D-Psicose. However, major drawbacks in application of ketose 3-epimerases are bioconversion efficiency and reusability of the enzyme. We have attempted immobilization of ketose 3-epimerases from Agrobacterium tumefaciens (agtu) D-psicose 3-epimerase (DPEase) on graphene oxide. Scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR) and Thermo gravimetric analysis (TGA) showed that the enzyme was successfully immobilized on the graphene oxide. Graphene oxide immobilized agtu-DPEase (GO-agtu-DPEase) shows pH optima at 7.5 and 60°C as higher working temperature. Significant improvement in thermal stability was observed which showed half-life of 720min at 60°C whereas Agrobacterium tumefaciens (agtu) DPEase displayed 3.99min. At equilibrium, 40:60 (D-psicose: D-fructose) the bioconversion efficiency was accounted for Graphene oxide immobilized DPEase which is higher than the agtu-DPEase. Graphene oxide immobilized DPEase showed bioconversion efficiency up to 10 cycles of reusability.
D-阿洛酮糖(D-核糖-2-己酮糖或 D-阿卓糖)是 D-果糖的差向异构体,被认为是一种罕见的低热量糖,具有重要的生理功能。使用酮糖 3-差向异构酶进行酶法生产是生产 D-阿洛酮糖的可行工艺。然而,酮糖 3-差向异构酶在应用中的主要缺点是生物转化效率和酶的可重复使用性。我们试图将根癌农杆菌(Agrobacterium tumefaciens)的酮糖 3-差向异构酶(agtu-DPEase)固定在氧化石墨烯上。扫描电子显微镜(SEM)、傅里叶变换红外光谱(FTIR)和热重分析(TGA)表明,酶已成功固定在氧化石墨烯上。氧化石墨烯固定的 agtu-DPEase(GO-agtu-DPEase)在 pH7.5 和 60°C 时表现出更高的工作温度下的最佳 pH 值。观察到热稳定性的显著提高,在 60°C 时半衰期为 720min,而根癌农杆菌(agtu)DPEase 仅为 3.99min。在平衡时,40:60(D-阿洛酮糖:D-果糖)的生物转化效率为氧化石墨烯固定的 DPEase,高于 agtu-DPEase。氧化石墨烯固定的 DPEase 显示出高达 10 次循环的可重复使用的生物转化效率。