酶水解过程中木质素与纤维素酶的相互作用

Mingfu Li, Qingtong Zhang, Changzhou Chen, Shuangfei Wang, D. Min
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引用次数: 3

摘要

木质纤维素生物质转化为生物燃料或生物化学物质通常涉及预处理过程,然后是酶催化纤维素和半纤维素组分水解为可发酵糖。许多因素可以促成生物质的顽固性,例如,木质素含量和结构,纤维素的结晶度,纤维聚合程度和半纤维素含量等。然而,纤维素酶与木质素之间的非生产性结合是影响酶解的最大因素。为了减少酶对木质素的非生产性吸附,提高酶解效率,本文对木质素与酶相互作用的研究进展进行了综述。首先,综述了预处理工艺对木质素含量和酶解的影响。总结了木质素含量和官能团对酶解的影响。评价了木质素薄膜的制备方法和表征方法。最后,综述了用于表征木质素与纤维素酶相互作用的方法,并讨论了减少木质素与纤维素酶非生产性结合的方法。本文综述了目前对木质素阻碍木质纤维素生物质酶解的研究进展,为开发更经济有效的方法和添加剂来减少木质素与酶的相互作用以提高酶解效率提供理论依据。
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Lignin Interaction with Cellulase during Enzymatic Hydrolysis
The conversion of lignocellulosic biomass into biofuels or biochemicals typically involves a pretreatment process followed by the enzyme-catalyzed hydrolysis of cellulose and hemicellulose components to fermentable sugars. Many factors can contribute to the recalcitrance of biomass, e.g., the lignin content and structure, crystallinity of cellulose, degree of fiber polymerization, and hemicellulose content, among others. However, nonproductive binding between cellulase and lignin is the factor with the greatest impact on enzymatic hydrolysis. To reduce the nonproductive adsorption of enzymes on lignin and improve the efficiency of enzymatic hydrolysis, this review comprehensively summarized the progress that has been made in understanding the interactions between lignin and enzymes. Firstly, the effects of pretreatment techniques on lignin content and enzymatic hydrolysis were reviewed. The effects of lignin content and functional groups on enzymatic hydrolysis were then summarized. Methods for the preparation and characterization of lignin films were assessed. Finally, the methods applied to characterize the interactions between lignin and cellulase were reviewed, and methods for decreasing the nonproductive binding of enzymes to lignin were discussed. This review provides an overview of the current understanding of how lignin hinders the enzymatic hydrolysis of lignocellulosic biomass, and provides a theoretical basis for the development of more economical and effective methods and additives to reduce the interaction of lignin and enzymes to improve the efficiency of enzymatic hydrolysis.
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