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磁性共价有机框架作为脂肪酶固定化和回收的理想载体,通过极大地维持酶活性有效地实现生物柴油的生产。

Magnetic COFs as satisfied support for lipase immobilization and recovery to effectively achieve the production of biodiesel by great maintenance of enzyme activity.

作者信息

Zhou Zi-Wen, Cai Chun-Xian, Xing Xiu, Li Jun, Hu Zu-E, Xie Zong-Bo, Wang Na, Yu Xiao-Qi

机构信息

Key Laboratory of Green Chemistry and Technology (Ministry of Education), College of Chemistry, Sichuan University, Chengdu, 610064, People's Republic of China.

Jiangxi Province Key Laboratory of Synthetic Chemistry, School of Chemistry, Biology and Material Science, East China University of Technology, Nanchang, 330013, People's Republic of China.

出版信息

Biotechnol Biofuels. 2021 Jul 14;14(1):156. doi: 10.1186/s13068-021-02001-0.

Abstract

BACKGROUND

Production of biodiesel from renewable sources such as inedible vegetable oils by enzymatic catalysis has been a hotspot but remains a challenge on the efficient use of an enzyme. COFs (Covalent Organic Frameworks) with large surface area and porosity can be applied as ideal support to avoid aggregation of lipase and methanol. However, the naturally low density limits its application. In this work, we reported a facile synthesis of core-shell magnetic COF composite (FeO@COF-OMe) to immobilize RML (Rhizomucor miehei lipase), to achieve its utilization in biodiesel production.

RESULT

This strategy gives extrinsic magnetic property, and the magnetic COFs is much heavier and could disperse in water medium well, facilitating the attachment with the enzyme. The resultant biocomposite exhibited an excellent capacity of RML due to its high surface area and fast response to the external magnetic field, as well as good chemical stability. The core-shell magnetic COF-OMe structure not only achieved highly efficient immobilization and recovery processes but also maintained the activity of lipase to a great extent. RML@FeO@COF-OMe performed well in practical applications, while free lipase did not. The biocomposite successfully achieved the production of biodiesel from Jatropha curcas Oil with a yield of about 70% in the optimized conditions.

CONCLUSION

Magnetic COFs (FeO@COF-OMe) for RML immobilization greatly improved catalytic performance in template reaction and biodiesel preparation. The magneticity makes it easily recovered and separated from the system. This first successful attempt of COFs-based immobilized enzyme broadened the prospect of biodiesel production by COFs with some inspiration.

摘要

背景

通过酶催化从可再生资源(如非食用植物油)生产生物柴油一直是研究热点,但在酶的高效利用方面仍面临挑战。具有大表面积和孔隙率的共价有机框架(COFs)可作为理想载体,避免脂肪酶和甲醇聚集。然而,其天然低密度限制了应用。在本研究中,我们报道了一种简便的核壳磁性COF复合材料(FeO@COF-OMe)的合成方法,用于固定米黑根毛霉脂肪酶(RML),以实现其在生物柴油生产中的应用。

结果

该策略赋予了外在磁性,磁性COFs更重且能在水介质中良好分散,便于与酶结合。所得生物复合材料由于其高表面积、对外部磁场的快速响应以及良好的化学稳定性,表现出优异的固定RML的能力。核壳磁性COF-OMe结构不仅实现了高效的固定化和回收过程,还在很大程度上保持了脂肪酶的活性。RML@FeO@COF-OMe在实际应用中表现良好,而游离脂肪酶则不然。在优化条件下,该生物复合材料成功地从麻疯树油生产生物柴油,产率约为70%。

结论

用于固定RML的磁性COFs(FeO@COF-OMe)极大地提高了模板反应和生物柴油制备中的催化性能。磁性使其易于从体系中回收和分离。基于COFs的固定化酶的首次成功尝试为COFs在生物柴油生产中的应用拓宽了前景并提供了一些启示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8643/8278614/adccb97f781d/13068_2021_2001_Sch1_HTML.jpg

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