Suppr超能文献

木质素-酶相互作用:机制、缓解方法、建模和研究前景。

Lignin-enzyme interaction: Mechanism, mitigation approach, modeling, and research prospects.

机构信息

Department of Environmental Engineering and Earth Sciences, Clemson University, 342 Computer Court, Anderson, SC 29625, USA.

Department of Environmental Engineering and Earth Sciences, Clemson University, 342 Computer Court, Anderson, SC 29625, USA.

出版信息

Biotechnol Adv. 2017 Jul;35(4):466-489. doi: 10.1016/j.biotechadv.2017.03.010. Epub 2017 Mar 25.

Abstract

The adverse environmental impacts of the fossil fuel and the concerns of energy security necessitate the development of alternative clean energy sources from renewable feedstocks. Lignocellulosic biomass is a 2nd generation feedstock used in the production of biofuels and bio-based products that are conventionally derived from fossil resources. The biochemical conversion, which entails biomass pretreatment, enzymatic hydrolysis and fermentation, is one major platform used to transform lignocelluloses into biofuels. However, lignin presents many challenges to enzymatic hydrolysis leading to the need of high enzyme dose, low hydrolysis yield, low level of recyclability, high cost of enzymatic hydrolysis (because of the high cost of enzymes), and so on. Therefore, enzymatic hydrolysis, which is not cost effective, becomes one of major cost contributors. To mitigate the negative effects of lignin, extensive research has been conducted to explore the fundamental mechanisms of lignin-enzyme interactions to develop technologies to overcome the negative effects of lignin on enzymatic hydrolysis. Non-productive adsorption, which is characterized by hydrophobic, electrostatic and/or hydrogen bonding interactions, is widely known as the primary mechanism governing lignin-enzyme interactions. In addition, lignin-enzyme interaction is also influenced by steric hindrance (i.e., the physical blocking of enzyme access to carbohydrates by lignin). However, the mechanisms underlying the lignin-enzyme interactions remain unclear. This article aims to present a comprehensive review on the lignin-enzyme interactions (i.e. the mechanism, governing driving forces, modeling, and technologies for mitigating the negative effect of lignin). The current challenges inherent in this process and possible avenues of research in cellulosic biorefinery conclude this article.

摘要

化石燃料的环境负面影响以及对能源安全的关注促使人们需要从可再生原料中开发替代清洁能源。木质纤维素生物质是一种第二代原料,用于生产生物燃料和生物基产品,这些产品通常源自化石资源。生物转化是一种主要的平台,包括生物质预处理、酶解和发酵,用于将木质纤维素转化为生物燃料。然而,木质素对酶解有许多挑战,导致需要高酶剂量、低水解产率、低可回收性、酶解成本高(因为酶的成本高)等。因此,酶解不是一种具有成本效益的方法,而是主要成本来源之一。为了减轻木质素的负面影响,人们进行了广泛的研究,以探索木质素-酶相互作用的基本机制,开发克服木质素对酶解负面影响的技术。非生产性吸附是木质素-酶相互作用的主要机制之一,其特征是疏水、静电和/或氢键相互作用。此外,木质素-酶相互作用还受到空间位阻(即木质素物理上阻止酶与碳水化合物接触)的影响。然而,木质素-酶相互作用的机制仍不清楚。本文旨在全面综述木质素-酶相互作用(即机制、控制驱动力、建模和减轻木质素负面影响的技术)。本文还讨论了这一过程中固有的当前挑战和纤维素生物炼制研究的可能途径。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验