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创新型纳米生物催化剂的发展趋势及其在生物催化转化中的应用。

Trends in the development of innovative nanobiocatalysts and their application in biocatalytic transformations.

机构信息

Laboratory of Biotechnology, Department of Biological Applications and Technology, University of Ioannina, Ioannina, Greece.

Laboratory of Biotechnology, Department of Biological Applications and Technology, University of Ioannina, Ioannina, Greece.

出版信息

Biotechnol Adv. 2021 Nov 1;51:107738. doi: 10.1016/j.biotechadv.2021.107738. Epub 2021 Mar 26.

Abstract

The ever-growing demand for cost-effective and innocuous biocatalytic transformations has prompted the rational design and development of robust biocatalytic tools. Enzyme immobilization technology lies in the formation of cooperative interactions between the tailored surface of the support and the enzyme of choice, which result in the fabrication of tremendous biocatalytic tools with desirable properties, complying with the current demands even on an industrial level. Different nanoscale materials (organic, inorganic, and green) have attracted great attention as immobilization matrices for single or multi-enzymatic systems. Aiming to unveil the potentialities of nanobiocatalytic systems, we present distinct immobilization strategies and give a thorough insight into the effect of nanosupports specific properties on the biocatalysts' structure and catalytic performance. We also highlight the development of nanobiocatalysts for their incorporation in cascade enzymatic processes and various types of batch and continuous-flow reactor systems. Remarkable emphasis is given on the application of such nanobiocatalytic tools in several biocatalytic transformations including bioremediation processes, biofuel production, and synthesis of bioactive compounds and fine chemicals for the food and pharmaceutical industry.

摘要

不断增长的对经济高效且无害的生物催化转化的需求促使人们对稳健的生物催化工具进行了合理的设计和开发。酶固定化技术在于选择的载体表面与酶之间形成协同相互作用,从而制造出具有理想性能的大量生物催化工具,即使在工业水平上也能满足当前的需求。不同的纳米级材料(有机、无机和绿色)作为单酶或多酶系统的固定化基质吸引了极大的关注。为了揭示纳米生物催化系统的潜力,我们提出了不同的固定化策略,并深入了解纳米载体的特定性质对生物催化剂结构和催化性能的影响。我们还重点介绍了纳米生物催化剂的发展,以将其纳入级联酶促反应以及各种批式和连续流动反应器系统中。我们特别强调了这些纳米生物催化工具在包括生物修复过程、生物燃料生产以及用于食品和制药行业的生物活性化合物和精细化学品的合成等多种生物催化转化中的应用。

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