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CBM1和连接区对丝状真菌烟曲霉Z5来源的新型热稳定二聚体GH10木聚糖酶(Xyn10A)酶学性质的影响

Effect of CBM1 and linker region on enzymatic properties of a novel thermostable dimeric GH10 xylanase (Xyn10A) from filamentous fungus Aspergillus fumigatus Z5.

作者信息

Miao Youzhi, Kong Yanqiong, Li Pan, Li Guangqi, Liu Dongyang, Shen Qirong, Zhang Ruifu

机构信息

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, China.

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.

出版信息

AMB Express. 2018 Mar 21;8(1):44. doi: 10.1186/s13568-018-0576-5.

Abstract

Xylanase with a high thermostability will satisfy the needs of raising the temperature of hydrolysis to improve the rheology of the broth in industry of biomass conversion. In this study, a xylanase gene (xyn10A), predicted to encode a hydrolase domain of GH10, a linker region and a CBM1 domain, was cloned from a superior lignocellulose degrading strain Aspergillus fumigatus Z5 and successfully expressed in Pichia pastoris X33. Xyn10A has a specific xylanase activity of 34.4 U mg, and is optimally active at 90 °C and pH 6.0. Xyn10A shows quite stable at pHs ranging from 3.0 to 11.0, and keeps over 40% of xylanase activity after incubation at 70 °C for 1 h. Removal of CBM1 domain has a slight negative effect on its thermostability, but the further cleavage of linker region significantly decreased its stability at high temperature. The transfer of CBM1 and linker region to another GH10 xylanase can help to increase the thermostability. In addition, hydrolase domains between the two Xyn10A proteins naturally formed a dimer structure, which became more thermostable after removing the CBM1 or/and linker region. This thermostable Xyn10A is a suitable candidate for the highly efficient fungal enzyme cocktails for biomass conversion.

摘要

具有高热稳定性的木聚糖酶将满足生物质转化工业中提高水解温度以改善发酵液流变学的需求。在本研究中,从优良的木质纤维素降解菌株烟曲霉Z5中克隆了一个木聚糖酶基因(xyn10A),该基因预测编码一个GH10水解酶结构域、一个连接区和一个CBM1结构域,并在毕赤酵母X33中成功表达。Xyn10A的比木聚糖酶活性为34.4 U mg,在90℃和pH 6.0时活性最佳。Xyn10A在pH值为3.0至11.0的范围内表现出相当的稳定性,在70℃孵育1小时后仍保持超过40%的木聚糖酶活性。去除CBM1结构域对其热稳定性有轻微负面影响,但进一步切割连接区会显著降低其在高温下的稳定性。将CBM1和连接区转移到另一种GH10木聚糖酶上有助于提高热稳定性。此外,两个Xyn10A蛋白之间的水解酶结构域自然形成二聚体结构,去除CBM1或/和连接区后其热稳定性更高。这种热稳定的Xyn10A是用于生物质转化的高效真菌酶混合物的合适候选物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d21/5862715/4d74a991ee8b/13568_2018_576_Fig1_HTML.jpg

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