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Distinct Roles for Carbohydrate-Binding Modules of Glycoside Hydrolase 10 (GH10) and GH11 Xylanases from Caldicellulosiruptor sp Strain F32 in Thermostability and Catalytic Efficiency
Meng, Dong-Dong1,3; Ying, Yu1; Chen, Xiao-Hua1; Lu, Ming1; Ning, Kang1; Wang, Lu-Shan2; Li, Fu-Li1
2015-03-01
发表期刊APPLIED AND ENVIRONMENTAL MICROBIOLOGY
卷号81期号:6页码:2006-2014
摘要

Xylanases are crucial for lignocellulosic biomass deconstruction and generally contain noncatalytic carbohydrate-binding modules (CBMs) accessing recalcitrant polymers. Understanding how multimodular enzymes assemble can benefit protein engineering by aiming at accommodating various environmental conditions. Two multimodular xylanases, XynA and XynB, which belong to glycoside hydrolase families 11 (GH11) and GH10, respectively, have been identified from Caldicellulosiruptor sp. strain F32. In this study, both xylanases and their truncated mutants were overexpressed in Escherichia coli, purified, and characterized. GH11 XynATM1 lacking CBM exhibited a considerable improvement in specific activity (215.8 U nmol(-1) versus 94.7 U nmol(-1)) and thermal stability (half-life of 48 h versus 5.5 h at 75 degrees C) compared with those of XynA. However, GH10 XynB showed higher enzyme activity and thermostability than its truncated mutant without CBM. Site-directed mutagenesis of N-terminal amino acids resulted in a mutant, XynATM1-M, with 50% residual activity improvement at 75 degrees C for 48 h, revealing that the disordered region influenced protein thermostability negatively. The thermal stability of both xylanases and their truncated mutants were consistent with their melting temperature (T-m), which was determined by using differential scanning calorimetry. Through homology modeling and cross-linking analysis, we demonstrated that for XynB, the resistance against thermoinactivation generally was enhanced through improving both domain properties and interdomain interactions, whereas for XynA, no interdomain interactions were observed. Optimized intramolecular interactions can accelerate thermostability, which provided microbes a powerful evolutionary strategy to assemble catalysts that are adapted to various ecological conditions.

文章类型Article
WOS标题词Science & Technology ; Life Sciences & Biomedicine
DOI10.1128/AEM.03677-14
关键词[WOS]STREPTOMYCES-OLIVACEOVIRIDIS E-86 ; THERMOPHILIC ADAPTATION ; NONOMURAEA-FLEXUOSA ; FAMILY-10 XYLANASE ; CRYSTAL-STRUCTURE ; PLANT BIOMASS ; ENZYMES ; HYDROLYSIS ; STABILITY ; PROTEINS
收录类别SCI
语种英语
WOS研究方向Biotechnology & Applied Microbiology ; Microbiology
WOS类目Biotechnology & Applied Microbiology ; Microbiology
WOS记录号WOS:000350554800015
引用统计
被引频次:50[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符http://ir.qibebt.ac.cn/handle/337004/6398
专题单细胞中心组群
作者单位1.Chinese Acad Sci, Qingdao Inst Bioenergy & Bioproc Technol, Key Lab Biofuels, Qingdao, Peoples R China
2.Shandong Univ, State Key Lab Microbial Technol, Jinan 250100, Peoples R China
3.Univ Chinese Acad Sci, Beijing, Peoples R China
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Meng, Dong-Dong,Ying, Yu,Chen, Xiao-Hua,et al. Distinct Roles for Carbohydrate-Binding Modules of Glycoside Hydrolase 10 (GH10) and GH11 Xylanases from Caldicellulosiruptor sp Strain F32 in Thermostability and Catalytic Efficiency[J]. APPLIED AND ENVIRONMENTAL MICROBIOLOGY,2015,81(6):2006-2014.
APA Meng, Dong-Dong.,Ying, Yu.,Chen, Xiao-Hua.,Lu, Ming.,Ning, Kang.,...&Li, Fu-Li.(2015).Distinct Roles for Carbohydrate-Binding Modules of Glycoside Hydrolase 10 (GH10) and GH11 Xylanases from Caldicellulosiruptor sp Strain F32 in Thermostability and Catalytic Efficiency.APPLIED AND ENVIRONMENTAL MICROBIOLOGY,81(6),2006-2014.
MLA Meng, Dong-Dong,et al."Distinct Roles for Carbohydrate-Binding Modules of Glycoside Hydrolase 10 (GH10) and GH11 Xylanases from Caldicellulosiruptor sp Strain F32 in Thermostability and Catalytic Efficiency".APPLIED AND ENVIRONMENTAL MICROBIOLOGY 81.6(2015):2006-2014.
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