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基于液滴微流控筛选系统的定向进化提高漆酶热稳定性。

Directed Evolution of Laccase for Improved Thermal Stability Facilitated by Droplet-Based Microfluidic Screening System.

机构信息

University of Science and Technology of China, 96 JinZhai Road, Baohe District, Hefei 230026, Anhui, P. R. China.

Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, 32 West Seventh Avenue, Tianjin Airport Economic Area, Tianjin 300308, P. R. China.

出版信息

J Agric Food Chem. 2022 Oct 26;70(42):13700-13708. doi: 10.1021/acs.jafc.2c05048. Epub 2022 Oct 14.

DOI:10.1021/acs.jafc.2c05048
PMID:36239441
Abstract

Laccases are attractive biocatalysts for industry due to their broad substrate spectrum, the use of oxygen as final electron acceptor, and water as the sole byproduct. Increasing efforts have been devoted to the engineering of laccases to improve their properties. The droplet-based microfluidic screening (DMFS) technology can accelerate the screening procedure and probe the large sequence space. In this study, a DMFS system including a heating step and picoinjection was used to sort large laccase libraries, yielding 12 variants with enhanced thermotolerance. All the obtained amino acid substitutions are distributed on the surface of the laccase. Interestingly, recombination of three identified substitutions of Asp to Asn on the surface resulted in the best variant M20, exhibiting 24.0-fold higher remaining activity at 58.8 °C and 1.9-3.4-fold higher remaining activity after incubation in organic solvents solution (20% (v/v) methanol and ethanol) and ionic liquid solution (20% (v/v) 1-ethyl-3-methylimidazolium ethyl sulfate) for 12 h. Furthermore, molecular dynamic simulations revealed that the recombination of the three beneficial substitutions, Asp98Asn, Asp474Asn, and Asp340Asn on the surface introduced more hydrogen bonds compared to the wild type, which made M20 more thermostable. This study highlighted the importance of the DMFS system for an efficient identification of beneficial long-distance amino acid substitutions.

摘要

漆酶由于其广泛的底物谱、使用氧气作为最终电子受体以及水作为唯一的副产物,因此成为工业中极具吸引力的生物催化剂。人们越来越致力于漆酶的工程改造,以改善其性能。基于液滴的微流控筛选 (DMFS) 技术可以加速筛选过程并探测大的序列空间。在这项研究中,使用包括加热步骤和皮秒注射的 DMFS 系统对大型漆酶文库进行分类,得到了 12 种耐热性增强的变体。所有获得的氨基酸取代都分布在漆酶的表面。有趣的是,表面上三个鉴定出的取代物天冬氨酸到天冬酰胺的重组导致最佳变体 M20 的出现,在 58.8°C 下剩余活性提高了 24.0 倍,在有机溶剂溶液(20%(v/v)甲醇和乙醇)和离子液体溶液(20%(v/v)1-乙基-3-甲基咪唑乙基硫酸盐)中孵育 12 小时后剩余活性提高了 1.9-3.4 倍。此外,分子动力学模拟表明,表面上三个有益取代物(Asp98Asn、Asp474Asn 和 Asp340Asn)的重组引入了比野生型更多的氢键,这使得 M20 更耐热。本研究强调了 DMFS 系统在有效鉴定有益的长距离氨基酸取代方面的重要性。

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