ABBS博客分享 http://blog.sciencenet.cn/u/chshou 自由的小鱼

博文

ABBS: Structure features of GH10 xylanase from Caldicellul

已有 2112 次阅读 2016-11-24 09:52 |个人分类:期刊新闻|系统分类:论文交流| Structure, GH10, xylanase

Structure features of GH10 xylanase from Caldicellulosiruptor bescii: implication for its thermophilic adaption and substrate binding preference

Yong Zhang,  Jiao An,  Guangyu Yang,  Xiaofei Zhang,  Yuan Xie,  Liuqing Chen and  Yan Feng

State Key Laboratory of Microbial Metabolism, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai 200240, China

Acta Biochim Biophys Sin 2016, 48: 948–957; doi: 10.1093/abbs/gmw086

Caldicellulosiruptor bescii is the most thermophilic cellulolytic species of organisms known to date. In our previous study, GH10 xylanase CbXyn10B from C. bescii displayed outstanding hydrolytic activity toward various xylans at high temperatures. To understand the structural basis for this protein's catalysis and thermostability, we solved the crystal structures of CbXyn10B and its complexes with xylooligosaccharides. These structural models were used to guide comparison with its mesophilic counterpart PbXyn10B. A distinctive structural feature is that thermophilic CbXyn10B presents a relatively stable interaction between the extended loops L7 and L8 in the catalytic cleft by an extensive hydrogen bonding network, which is mediated by Lys306, Arg314 and three well-ordered water molecules. Moreover, a unique aromatic cluster consisting of Try17, Phe20, Phe21, and Phe337 may enhance the interaction between the N- and C- terminus. Targeted mutagenesis demonstrated that these interactions substantially contribute to enzyme stabilization, as indicated by a considerable decrease in the melting temperature (Tm) of CbXyn10B by substituting critical residues with Ala. Therefore, it was shown that not only the aromatic interaction connecting protein termini but also the extensive hydrogen bonding network formed between surface loops could restrict the local structural flexibility and contribute significantly to the overall stability of enzymes. Furthermore, the xylooligosaccharides were found to tightly bind to the glycone subsites of xylanase, indicating higher affinities at these subsites and reflecting its substrate binding preference. Our results suggest that CbXyn10B is stabilized with distinct rigidity at the catalytic cleft as well as the terminal regions, which provides insights into the evolutionary strategy for accommodating the functional needs of GH10 enzymes to high temperature.

Substrate binding subsites of CbXyn10B

阅读全文: http://www.abbs.org.cn/arts.asp?id=4078

相关论文:



https://blog.sciencenet.cn/blog-592748-1016461.html

上一篇:ABBS: Gender difference in valproic acid-induced neuroprotec
下一篇:ABBS: N-terminal domains of ARC1 are essential for interact
收藏 IP: 202.127.20.*| 热度|

0

该博文允许注册用户评论 请点击登录 评论 (0 个评论)

数据加载中...
扫一扫,分享此博文

Archiver|手机版|科学网 ( 京ICP备07017567号-12 )

GMT+8, 2024-5-1 18:28

Powered by ScienceNet.cn

Copyright © 2007- 中国科学报社

返回顶部