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朝着固定化酶直接生产的生物工程:生物催化剂设计的范式转变。

Bioengineering toward direct production of immobilized enzymes: A paradigm shift in biocatalyst design.

机构信息

a Institute for Molecular Bioscience, The University of Queensland , St Lucia , Brisbane , Australia.

b Institute of Fundamental Sciences, Massey University , Palmerston North , New Zealand.

出版信息

Bioengineered. 2018 Jan 1;9(1):6-11. doi: 10.1080/21655979.2017.1325040. Epub 2017 May 19.

Abstract

The need for cost-effectively produced and improved biocatalysts for industrial, pharmaceutical and environmental processes is steadily increasing. While enzyme properties themselves can be improved via protein engineering, immobilization by attachment to carrier materials remains a critical step for stabilization and process implementation. A new emerging immobilization approach, the in situ immobilization, enables simultaneous production of highly active enzymes and carrier materials using bioengineering/synthetic biology of microbial cells. In situ enzyme immobilization holds the promise of cost-effective production of highly functional immobilized biocatalysts for uses such as in bioremediation, drug synthesis, bioenergy and food processing.

摘要

对于能够经济有效地生产并改进的生物催化剂的需求正在稳步增加,这些生物催化剂可用于工业、制药和环境等领域。虽然可以通过蛋白质工程来改善酶的特性,但通过附着在载体材料上来固定酶仍然是稳定和实施该过程的关键步骤。一种新兴的固定化方法——原位固定化,可利用微生物细胞的生物工程/合成生物学同时生产高活性的酶和载体材料。原位酶固定化有望经济有效地生产具有高功能的固定化生物催化剂,可用于生物修复、药物合成、生物能源和食品加工等领域。

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