Dizge Nadir, Aydiner Coskun, Imer Derya Y, Bayramoglu Mahmut, Tanriseven Aziz, Keskinler Bülent
Gebze Institute of Technology, Department of Environmental Engineering, Gebze 41400, Turkey.
Bioresour Technol. 2009 Mar;100(6):1983-91. doi: 10.1016/j.biortech.2008.10.008. Epub 2008 Nov 22.
This study aims at carrying out lipase-catalyzed synthesis of fatty acid methyl esters (biodiesel) from various vegetable oils using lipase immobilized onto a novel microporous polymeric matrix (MPPM) as a low-cost biocatalyst. The research is focused on three aspects of the process: (a) MPPM synthesis (monolithic, bead, and powder forms), (b) microporous polymeric biocatalyst (MPPB) preparation by immobilization of lipase onto MPPM, and (c) biodiesel production by MPPB. Experimental planning of each step of the study was separately carried out in accordance with design of experiment (DoE) based on Taguchi methodology. Microporous polymeric matrix (MPPM) containing aldehyde functional group was synthesized by polyHIPE technique using styrene, divinylbenzene, and polyglutaraldehyde. Thermomyces lanuginosus lipase was covalently attached onto MPPM with 80%, 85%, and 89% immobilization efficiencies using bead, powder, and monolithic forms, respectively. Immobilized enzymes were successfully used for the production of biodiesel using sunflower, soybean, and waste cooking oils. It was shown that immobilized enzymes retain their activities during 10 repeated batch reactions at 25 degrees C, each lasting 24h. Since the developed novel method is simple yet effective, it could have a potential to be used industrially for the production of chemicals requiring immobilized lipases.
本研究旨在利用固定在新型微孔聚合物基质(MPPM)上的脂肪酶作为低成本生物催化剂,通过脂肪酶催化各种植物油合成脂肪酸甲酯(生物柴油)。该研究聚焦于该过程的三个方面:(a)MPPM的合成(整体式、珠状和粉末状),(b)通过将脂肪酶固定在MPPM上来制备微孔聚合物生物催化剂(MPPB),以及(c)MPPB生产生物柴油。研究的每个步骤的实验规划均根据基于田口方法的实验设计(DoE)分别进行。通过使用苯乙烯、二乙烯基苯和聚戊二醛的聚HIPE技术合成了含有醛官能团的微孔聚合物基质(MPPM)。嗜热栖热菌脂肪酶分别以珠状、粉末状和整体式形式以80%、85%和89%的固定化效率共价连接到MPPM上。固定化酶成功用于使用向日葵油、大豆油和废食用油生产生物柴油。结果表明,固定化酶在25℃下进行的10次重复分批反应中,每次持续24小时,仍保留其活性。由于所开发的新方法简单而有效,它有可能在工业上用于生产需要固定化脂肪酶的化学品。