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为最小化酶解木质纤维素过程中产物抑制的反应器设计:I. 纤维二糖和葡萄糖对纤维素酶抑制作用的意义和机制。

Reactor design for minimizing product inhibition during enzymatic lignocellulose hydrolysis: I. Significance and mechanism of cellobiose and glucose inhibition on cellulolytic enzymes.

机构信息

Department of Chemical and Biochemical Engineering, Technical University of Denmark, DK-2800 Kgs. Lyngby, Denmark.

出版信息

Biotechnol Adv. 2010 May-Jun;28(3):308-24. doi: 10.1016/j.biotechadv.2010.01.003. Epub 2010 Jan 18.

Abstract

Achievement of efficient enzymatic degradation of cellulose to glucose is one of the main prerequisites and one of the main challenges in the biological conversion of lignocellulosic biomass to liquid fuels and other valuable products. The specific inhibitory interferences by cellobiose and glucose on enzyme-catalyzed cellulose hydrolysis reactions impose significant limitations on the efficiency of lignocellulose conversion - especially at high-biomass dry matter conditions. To provide the base for selecting the optimal reactor conditions, this paper reviews the reaction kinetics, mechanisms, and significance of this product inhibition, notably the cellobiose and glucose inhibition, on enzymatic cellulose hydrolysis. Particular emphasis is put on the distinct complexity of cellulose as a substrate, the multi-enzymatic nature of the cellulolytic degradation, and the particular features of cellulase inhibition mechanisms and kinetics. The data show that new strategies that place the bioreactor design at the center stage are required to alleviate the product inhibition and in turn to enhance the efficiency of enzymatic cellulose hydrolysis. Accomplishment of the enzymatic hydrolysis at medium substrate concentration in separate hydrolysis reactors that allow continuous glucose removal is proposed to be the way forward for obtaining feasible enzymatic degradation in lignocellulose processing.

摘要

实现纤维素的高效酶解转化为葡萄糖是木质纤维素生物质生物转化为液体燃料和其他有价值产品的主要前提和主要挑战之一。纤维二糖和葡萄糖对酶催化纤维素水解反应的特殊抑制干扰,对木质纤维素转化的效率,尤其是在高生物质干物质条件下,造成了显著的限制。为了为选择最佳的反应器条件提供依据,本文综述了该产物抑制,特别是纤维二糖和葡萄糖抑制,对酶促纤维素水解的反应动力学、机制和意义。特别强调了纤维素作为底物的独特复杂性、纤维素降解的多酶性质以及纤维素酶抑制机制和动力学的特殊特征。数据表明,需要将生物反应器设计置于中心舞台的新策略来缓解产物抑制,从而提高酶促纤维素水解的效率。提出在允许连续去除葡萄糖的单独水解反应器中,在中等底物浓度下进行酶解,以获得可行的木质纤维素加工中的酶解。

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