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通过半理性设计显著提高嗜热GH10家族木聚糖酶XynAF1的热稳定性

Significantly improving the thermostability of a hyperthermophilic GH10 family xylanase XynAF1 by semi-rational design.

作者信息

Li Guangqi, Zhou Xuan, Li Zhihong, Liu Yunpeng, Liu Dongyang, Miao Youzhi, Wan Qun, Zhang Ruifu

机构信息

Key Laboratory of Microbial Resources Collection and Preservation, Ministry of Agriculture, Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Beijing, 100081, People's Republic of China.

Jiangsu Provincial Key Lab for Organic Solid Waste Utilization, National Engineering Research Center for Organic-based Fertilizers, Jiangsu Collaborative Innovation Center for Solid Organic Waste Resource Utilization, Nanjing Agricultural University, Nanjing, 210095, People's Republic of China.

出版信息

Appl Microbiol Biotechnol. 2021 Jun;105(11):4561-4576. doi: 10.1007/s00253-021-11340-9. Epub 2021 May 20.

Abstract

Xylanases have a broad range of applications in industrial biotechnologies, which require the enzymes to resist the high-temperature environments. The majority of xylanases have maximum activity at moderate temperatures, which limited their potential applications in industries. In this study, a thermophilic GH10 family xylanase XynAF1 from the high-temperature composting strain Aspergillus fumigatus Z5 was characterized and engineered to further improve its thermostability. XynAF1 has the optimal reaction temperature of 90 °C. The crystal structure of XynAF1 was obtained by X-ray diffraction after heterologous expression, purification, and crystallization. The high-resolution X-ray crystallographic structure of the protein-product complex was obtained by soaking the apo-state crystal with xylotetraose. Structure analysis indicated that XynAF1 has a rigid skeleton, which helps to maintain the hyperthermophilic characteristic. The homologous structure analysis and the catalytic center mutant construction of XynAF1 indicated the conserved catalytic center contributed to the high optimum catalytic temperature. The amino acids in the surface of xylanase XynAF1 which might influence the enzyme thermostability were identified by the structure analysis. Combining the rational design with the saturation mutation at the high B-value regions, the integrative mutant XynAF1-AC with a 6-fold increase of thermostability was finally obtained. This study efficiently improved the thermostability of a GH10 family xylanase by semi-rational design, which provided a new biocatalyst for high-temperature biotechnological applications. KEY POINTS: • Obtained the crystal structure of GH10 family hyperthermophilic xylanase XynAF1. • Shed light on the understanding of the GH10 family xylanase thermophilic mechanism. • Constructed a 6-fold increased thermostability recombinant xylanase.

摘要

木聚糖酶在工业生物技术中有着广泛应用,这要求酶能抵抗高温环境。大多数木聚糖酶在中等温度下具有最大活性,这限制了它们在工业中的潜在应用。在本研究中,对来自高温堆肥菌株烟曲霉Z5的嗜热GH10家族木聚糖酶XynAF1进行了表征和工程改造,以进一步提高其热稳定性。XynAF1的最佳反应温度为90℃。通过异源表达、纯化和结晶后,利用X射线衍射获得了XynAF1的晶体结构。通过用木四糖浸泡无辅基状态晶体,获得了蛋白质 - 产物复合物的高分辨率X射线晶体结构。结构分析表明,XynAF1具有刚性骨架,这有助于维持其超嗜热特性。XynAF1的同源结构分析和催化中心突变体构建表明,保守的催化中心有助于其高最佳催化温度。通过结构分析确定了木聚糖酶XynAF1表面可能影响酶热稳定性的氨基酸。将合理设计与高B值区域的饱和突变相结合,最终获得了热稳定性提高6倍的整合突变体XynAF1 - AC。本研究通过半理性设计有效提高了GH10家族木聚糖酶的热稳定性,为高温生物技术应用提供了一种新型生物催化剂。要点:• 获得了GH10家族超嗜热木聚糖酶XynAF1的晶体结构。• 有助于理解GH10家族木聚糖酶的嗜热机制。• 构建了热稳定性提高6倍的重组木聚糖酶。

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