序列(生物学)
功能(生物学)
空格(标点符号)
序列空间
计算生物学
计算机科学
生物
进化生物学
数学
遗传学
纯数学
巴拿赫空间
操作系统
作者
Ana Martínez Gascueña,Haiyang Wu,David Owen,Pedro J. Hernando,Serena Monaco,Matthew Penner,Gwénaëlle Le Gall,Richard A. Gardner,Didier Ndeh,Paulina A. Urbanowicz,Daniel I. R. Spencer,Martin Walsh,Jesús Angulo,Nathalie Juge
出处
期刊:Research Square - Research Square
日期:2023-07-28
标识
DOI:10.21203/rs.3.rs-3101218/v1
摘要
Abstract Microbial α-l-fucosidases catalyse the hydrolysis of terminal α-l-fucosidic linkages with diverse substrate/linkage specificities and can be used in transglycosylation reactions to synthesise oligosaccharides. Based on sequence identity, α-l-fucosidases have been classified in distinct glycoside hydrolases (GHs) families in the carbohydrate-active enzymes (CAZy) database. Here, we explored the sequence-function space of fucosidases from GH29 family. Based on sequence similarity network (SSN) analyses, 16 GH29 α-l-fucosidases were selected for functional characterisation. Using activity assays combined with HPAEC-PAD and LC-FD-MS/MS analyses, we determined the substrate and linkage specificities of these enzymes against a range of defined oligosaccharides and glycoconjugates, revealing a range of specificities for α1,2, α1,3, α1,4 and α1,6 linked fucosylated ligands. The structural basis for the substrate specificity of GH29 fucosidase from Bifidobacterium asteroides towards α1-6 linkages and FA2G2 N-glycan was further determined by X-ray crystallography and saturation transfer difference NMR. TLC combined with electrospray ionization – MS and NMR confirmed the capacity of this enzyme to carry out transfucosylation reactions with GlcNAc and Fuc1,3GlcNAc as acceptors. Taken together, these experimental data validate the use of SSN as a reliable bioinformatics approach to predict the substrate specificity and transfucosylation activity of GH29 fucosidases.
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