Institute of Chemical Technology and Engineering, Faculty of Chemical Technology, Poznan University of Technology, Berdychowo 4, PL-60965 Poznan, Poland.
Department of Chemistry, University of Agriculture Faisalabad, 38040 Faisalabad, Pakistan.
Int J Biol Macromol. 2023 May 15;237:123968. doi: 10.1016/j.ijbiomac.2023.123968. Epub 2023 Mar 9.
Nanobiocatalysts, in which enzyme molecules are integrated into/onto multifunctional materials, such as metal-organic frameworks (MOFs), have been fascinating and appeared as a new interface of nanobiocatalysis with multi-oriented applications. Among various nano-support matrices, functionalized MOFs with magnetic attributes have gained supreme interest as versatile nano-biocatalytic systems for organic bio-transformations. From the design (fabrication) to deployment (application), magnetic MOFs have manifested notable efficacy in manipulating the enzyme microenvironment for robust biocatalysis and thus assure requisite applications in several areas of enzyme engineering at large and nano-biocatalytic transformations, in particular. Magnetic MOFs-linked enzyme-based nano-biocatalytic systems offer chemo-regio- and stereo-selectivities, specificities, and resistivities under fine-tuned enzyme microenvironments. Considering the current sustainable bioprocesses demands and green chemistry needs, we reviewed synthesis chemistry and application prospects of magnetic MOFs-immobilized enzyme-based nano-biocatalytic systems for exploitability in different industrial and biotechnological sectors. More specifically, following a thorough introductory background, the first half of the review discusses various approaches to effectively developed magnetic MOFs. The second half mainly focuses on MOFs-assisted biocatalytic transformation applications, including biodegradation of phenolic compounds, removal of endocrine disrupting compounds, dye decolorization, green biosynthesis of sweeteners, biodiesel production, detection of herbicides and screening of ligands and inhibitors.
纳米生物催化剂是将酶分子整合到多功能材料(如金属有机框架(MOFs))中而形成的,它作为纳米生物技术的一个新界面,具有多方面的应用,引起了人们的极大关注。在各种纳米支撑基质中,具有磁性的功能化 MOFs 作为多功能纳米生物催化体系,在有机生物转化中具有广泛的应用。从设计(制造)到应用(应用),磁性 MOFs 在操纵酶微环境以实现强大的生物催化方面表现出了显著的效果,从而保证了在酶工程的多个领域和纳米生物催化转化中的广泛应用。磁性 MOFs 连接的基于酶的纳米生物催化系统在精细调节的酶微环境下提供化学、区域和立体选择性、特异性和耐药性。考虑到当前可持续生物工艺的需求和绿色化学的需要,我们综述了磁性 MOFs 固定化酶基纳米生物催化系统的合成化学和应用前景,以开发其在不同工业和生物技术领域的应用。更具体地说,在进行了全面的介绍性背景讨论之后,综述的前半部分讨论了有效开发磁性 MOFs 的各种方法。后半部分主要集中在 MOFs 辅助生物催化转化应用上,包括酚类化合物的生物降解、内分泌干扰化合物的去除、染料脱色、甜味剂的绿色生物合成、生物柴油生产、除草剂的检测和配体和抑制剂的筛选。