Suppr超能文献

为开发具有重要生物技术特性而对木聚糖酶进行工程改造。

Engineering of xylanases for the development of biotechnologically important characteristics.

作者信息

Sürmeli Yusuf, Şanlı-Mohamed Gülşah

机构信息

Department of Agricultural Biotechnology, Tekirdağ Namık Kemal University, Tekirdağ, Turkey.

Department of Chemistry, İzmir Institute of Technology, İzmir, Turkey.

出版信息

Biotechnol Bioeng. 2023 May;120(5):1171-1188. doi: 10.1002/bit.28339. Epub 2023 Feb 7.

Abstract

Xylanases are the main biocatalysts used for the reduction of the xylan backbone from hemicellulose, randomly splitting off β-1,4-glycosidic linkages between xylopyranosyl residues. Xylanase market has been annually estimated at 500 million US Dollars and they are potentially used in broad industrial process ranges such as paper pulp biobleaching, xylo-oligosaccharide production, and biofuel manufacture from lignocellulose. The highly stable xylanases are preferred in the downstream procedure of industrial processes because they can tolerate severe conditions. Almost all native xylanases can not endure adverse conditions thus they are industrially not proper to be utilized. Protein engineering is a powerful technology for developing xylanases, which can effectively work in adverse conditions and can meet requirements for industrial processes. This study considered state-of-the-art strategies of protein engineering for creating the xylanase gene diversity, high-throughput screening systems toward upgraded traits of the xylanases, and the prediction and comprehensive analysis of the target mutations in xylanases by in silico methods. Also, key molecular factors have been elucidated for industrial characteristics (alkaliphilic enhancement, thermal stability, and catalytic performance) of GH11 family xylanases. The present review explores industrial characteristics improved by directed evolution, rational design, and semi-rational design as protein engineering approaches for pulp bleaching process, xylooligosaccharides production, and biorefinery & bioenergy production.

摘要

木聚糖酶是用于从半纤维素中降解木聚糖主链的主要生物催化剂,它能随机切断吡喃木糖残基之间的β-1,4-糖苷键。木聚糖酶市场年估值约为5亿美元,并且它们潜在地应用于广泛的工业生产过程,如纸浆生物漂白、木寡糖生产以及从木质纤维素制造生物燃料。在工业生产的下游过程中,高度稳定的木聚糖酶更受青睐,因为它们能够耐受严苛的条件。几乎所有天然木聚糖酶都无法承受不利条件,因此在工业上不宜使用。蛋白质工程是开发木聚糖酶的一项强大技术,它能在不利条件下有效发挥作用,并能满足工业生产过程的要求。本研究考虑了蛋白质工程的前沿策略,包括创造木聚糖酶基因多样性、针对木聚糖酶改良特性的高通量筛选系统,以及通过计算机模拟方法对木聚糖酶中目标突变进行预测和综合分析。此外,还阐明了影响GH11家族木聚糖酶工业特性(嗜碱性增强、热稳定性和催化性能)的关键分子因素。本综述探讨了通过定向进化、理性设计和半理性设计等蛋白质工程方法改善的工业特性,这些方法可用于纸浆漂白过程、木寡糖生产以及生物精炼和生物能源生产。

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