Institute of Chemical Technology and Engineering, Faculty of Chemical Technology, Poznan University of Technology, Berdychowo 4, PL-60965 Poznan, Poland; Department of Chemical and Biochemical Engineering, Center for BioProcess Engineering, Technical University of Denmark, Soltofts Plads 229, DK-2800 Kgs. Lyngby, Denmark.
Department of Biotechnology and Biomedicine, Technical University of Denmark, Soltofts Plads 224, DK-2800 Kgs. Lyngby, Denmark.
Biotechnol Adv. 2019 Nov 15;37(7):107401. doi: 10.1016/j.biotechadv.2019.05.007. Epub 2019 May 22.
In the modern era, the use of sustainable, environmentally friendly alternatives for removal of recalcitrant pollutants in streams resulting from industrial processes is of key importance. In this context, biodegradation of phenolic compounds, pharmaceuticals and dyes in wastewater by using oxidoreductases offers numerous benefits. Tremendous research efforts have been made to develop novel, hybrid strategies for simultaneous immobilization of oxidoreductase and removal of toxic compounds. The use of support materials with the options for combining enzyme immobilization with adsorption technology focused on phenolic pollutants and products of biocatalytic conversion seems to be of particular interest. Application of enzymatic reactors based on immobilized oxidoreductases for coupling enzyme-aided degradation and membrane separation also attract still growing attention. However, prior selection of the most suitable support/sorbent material and/or membrane as well as operational mode and immobilization technique is required in order to achieve high removal efficiency. Thus, in the framework of this review, we present an overview of the impact of support/sorbent material on the catalytic properties of immobilized enzymes and sorption of pollutants as well as parameters of membranes for effective bioconversion and separation. Finally, future perspectives of the use of processes combining enzyme immobilization and sorption technology as well as application of enzymatic reactors for removal of environmental pollutants are discussed.
在现代,使用可持续的、环保的替代方法来去除工业过程中产生的溪流中难以去除的污染物至关重要。在这方面,利用氧化还原酶生物降解废水中的酚类化合物、药物和染料具有许多优势。人们已经做出了巨大的研究努力,开发出了新颖的混合策略,用于同时固定氧化还原酶和去除有毒化合物。使用具有将酶固定化与吸附技术相结合的选择的支撑材料,重点是酚类污染物和生物催化转化的产物,似乎特别有趣。基于固定化氧化还原酶的酶反应器用于偶联酶辅助降解和膜分离的应用也引起了越来越多的关注。然而,为了实现高去除效率,需要事先选择最合适的支撑/吸附材料和/或膜以及操作模式和固定化技术。因此,在本综述的框架内,我们概述了支撑/吸附材料对固定化酶的催化性能和污染物吸附以及用于有效生物转化和分离的膜参数的影响。最后,讨论了将酶固定化和吸附技术相结合的过程以及用于去除环境污染物的酶反应器的应用的未来展望。