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多功能纤维素酶是可再生生物经济的有力、通用工具。

Multifunctional cellulases are potent, versatile tools for a renewable bioeconomy.

机构信息

Dept. of Biochemistry, University of Wisconsin - Madison, 433 Babcock Dr., Madison, WI, 53706, United States; Great Lakes Bioenergy Research Center, Wisconsin Energy Institute, 1552 University Ave, Madison, WI, 53726, United States.

Dept. of Biochemistry, University of Wisconsin - Madison, 433 Babcock Dr., Madison, WI, 53706, United States; Great Lakes Bioenergy Research Center, Wisconsin Energy Institute, 1552 University Ave, Madison, WI, 53726, United States.

出版信息

Curr Opin Biotechnol. 2021 Feb;67:141-148. doi: 10.1016/j.copbio.2020.12.020. Epub 2021 Feb 4.

Abstract

Enzyme performance is critical to the future bioeconomy based on renewable plant materials. Plant biomass can be efficiently hydrolyzed by multifunctional cellulases (MFCs) into sugars suitable for conversion into fuels and chemicals, and MFCs fall into three functional categories. Recent work revealed MFCs with broad substrate specificity, dual exo-activity/endo-activity on cellulose, and intramolecular synergy, among other novel characteristics. Binding modules and accessory catalytic domains amplify MFC and xylanase activity in a wide variety of ways, and processive endoglucanases achieve autosynergy on cellulose. Multidomain MFCs from Caldicellulosiruptor are heat-tolerant, adaptable to variable cellulose crystallinity, and may provide interchangeable scaffolds for recombinant design. Further studies of MFC properties and their reactivity with plant biomass are recommended for increasing biorefinery yields.

摘要

基于可再生植物材料的未来生物经济对酶的性能至关重要。多功能纤维素酶(MFCs)可以有效地将植物生物质水解成适合转化为燃料和化学品的糖,MFCs 分为三类功能。最近的研究揭示了具有广泛底物特异性、纤维素的双外切活性/内切活性和分子内协同作用等新特性的 MFCs。结合模块和辅助催化结构域以多种方式放大 MFC 和木聚糖酶的活性,而进行性内切葡聚糖酶在纤维素上实现自动协同作用。来自 Caldicellulosiruptor 的多结构域 MFC 具有耐热性、适应可变纤维素结晶度的能力,并且可以为重组设计提供可互换的支架。建议进一步研究 MFC 特性及其与植物生物质的反应性,以提高生物炼制厂的产量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2f4/8366578/fa89948e0c2f/nihms-1728105-f0001.jpg

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