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漆酶工程:从理性设计到定向进化。

Laccase engineering: from rational design to directed evolution.

机构信息

DWI-Leibniz-Institute for Interactive Materials, Forckenbeckstraβe 50, 52056, Aachen, Germany.

Department of Biocatalysis, Institute of Catalysis, CSIC, Cantoblanco, 28049 Madrid, Spain.

出版信息

Biotechnol Adv. 2015 Jan-Feb;33(1):25-40. doi: 10.1016/j.biotechadv.2014.12.007. Epub 2014 Dec 27.

Abstract

Laccases are multicopper oxidoreductases considered by many in the biotechonology field as the ultimate "green catalysts". This is mainly due to their broad substrate specificity and relative autonomy (they use molecular oxygen from air as an electron acceptor and they only produce water as by-product), making them suitable for a wide array of applications: biofuel production, bioremediation, organic synthesis, pulp biobleaching, textiles, the beverage and food industries, biosensor and biofuel cell development. Since the beginning of the 21st century, specific features of bacterial and fungal laccases have been exhaustively adapted in order to reach the industrial demands for high catalytic activity and stability in conjunction with reduced production cost. Among the goals established for laccase engineering, heterologous functional expression, improved activity and thermostability, tolerance to non-natural media (organic solvents, ionic liquids, physiological fluids) and resistance to different types of inhibitors are all challenges that have been met, while obtaining a more comprehensive understanding of laccase structure-function relationships. In this review we examine the most significant advances in this exciting research area in which rational, semi-rational and directed evolution approaches have been employed to ultimately convert laccases into high value-added biocatalysts.

摘要

漆酶是多铜氧化还原酶,许多生物技术领域的人认为它是最终的“绿色催化剂”。这主要是因为它们具有广泛的底物特异性和相对自主性(它们使用空气中的分子氧作为电子受体,只产生水作为副产物),因此适用于广泛的应用领域:生物燃料生产、生物修复、有机合成、纸浆生物漂白、纺织品、饮料和食品工业、生物传感器和生物燃料电池开发。自 21 世纪初以来,人们对细菌和真菌漆酶的特定特性进行了详尽的改造,以满足对高催化活性和稳定性的工业需求,同时降低生产成本。在漆酶工程的目标中,异源功能表达、提高活性和热稳定性、对非天然介质(有机溶剂、离子液体、生理流体)的耐受性以及对不同类型抑制剂的抗性都是已经克服的挑战,同时对漆酶结构-功能关系有了更全面的了解。在这篇综述中,我们考察了这一令人兴奋的研究领域的最重要进展,其中采用了理性、半理性和定向进化方法,最终将漆酶转化为高附加值的生物催化剂。

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