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与纤维素 I 结合的减少的 A 型碳水化合物结合模块导致内切纤维素酶活性提高。

Reduced type-A carbohydrate-binding module interactions to cellulose I leads to improved endocellulase activity.

机构信息

Department of Chemical and Biochemical Engineering, Rutgers, The State University of New Jersey, Piscataway, New Jersey, USA.

Department of Biomedical Engineering, Rutgers, The State University of New Jersey, Piscataway, New Jersey, USA.

出版信息

Biotechnol Bioeng. 2021 Mar;118(3):1141-1151. doi: 10.1002/bit.27637. Epub 2020 Dec 16.

Abstract

Dissociation of nonproductively bound cellulolytic enzymes from cellulose is hypothesized to be a key rate-limiting factor impeding cost-effective biomass conversion to fermentable sugars. However, the role of carbohydrate-binding modules (CBMs) in enabling nonproductive enzyme binding is not well understood. Here, we examine the subtle interplay of CBM binding and cellulose hydrolysis activity for three models type-A CBMs (Families 1, 3a, and 64) tethered to multifunctional endoglucanase (CelE) on two distinct cellulose allomorphs (i.e., cellulose I and III). We generated a small library of mutant CBMs with varying cellulose affinity, as determined by equilibrium binding assays, followed by monitoring cellulose hydrolysis activity of CelE-CBM fusion constructs. Finally, kinetic binding assays using quartz crystal microbalance with dissipation were employed to measure CBM adsorption and desorption rate constants and , respectively, towards nanocrystalline cellulose derived from both allomorphs. Overall, our results indicate that reduced CBM equilibrium binding affinity towards cellulose I alone, resulting from increased desorption rates ( ) and reduced effective adsorption rates ( ), is correlated to overall improved endocellulase activity. Future studies could employ similar approaches to unravel the role of CBMs in nonproductive enzyme binding and develop improved cellulolytic enzymes for industrial applications.

摘要

纤维素酶与纤维素的非生产性结合的解离被假设为阻碍具有成本效益的生物质转化为可发酵糖的关键限速因素。然而,糖结合模块(CBMs)在促进非生产性酶结合中的作用还不是很清楚。在这里,我们研究了三种模型类型 A CBM(家族 1、3a 和 64)与两种不同纤维素变体(即纤维素 I 和 III)上的多功能内切葡聚糖酶(CelE)结合的微妙相互作用。我们通过平衡结合测定生成了具有不同纤维素亲和力的突变 CBM 文库,然后监测 CelE-CBM 融合构建体的纤维素水解活性。最后,使用石英晶体微天平耗散动力学结合测定分别测量了 CelE-CBM 对两种变体来源的纳米纤维素的吸附和解吸速率常数 和 。总的来说,我们的结果表明,单独降低 CBM 对纤维素 I 的平衡结合亲和力,是由于解吸速率( )增加和有效吸附速率( )降低所致,这与内切葡聚糖酶活性的整体提高有关。未来的研究可以采用类似的方法来揭示 CBM 在非生产性酶结合中的作用,并开发出用于工业应用的改良纤维素酶。

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