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Bioinformatics-aided function exploration of GH29 fucosidases from human gut Parabacteroides
Haiyang Wu1, Qingxin Li1, Jin Chuan Wu1
1Guangdong Engineering Technology Research Centre of Enzyme and Biocatalysis, Institute of Biological and Medical Engineering, Guangdong Academy of Sciences, No. 10 Shiliugang Road, Haizhu District, Guangzhou, Guangdong 510316, P. R. China.
Abstract:
Gut microbes produce α-l-fucosidases critical for utilizing human milk oligosaccharides, mucosal and dietary glycans. Although gut Parabacteroides have garnered attention for their impact on host health and disease, their CAZymes remain poorly studied. CAZome analysis of eleven gut Parabacteroides type strains revealed their capacity to degrade mucin O-glycans. Their abundance of GH29 fucosidases caught our attention, and we predicted the functional profiles of 46 GH29 fucosidases using in silico approaches. Our findings showed diverse linkages specificities and species-specific distributions, with over half of GH29 enzymes functioning as α1,3/4 fucosidases, essential for acting on Lewis antigen epitopes of mucin O-glycans. We further enzymatically validated 4 novel GH29 sequences from poorly characterized groups. PgoldGH29A (cluster37GH29BERT, GH29:75.1CUPP) does not act on tested natural substrates. PgoldGH29B (cluster1GH29BERT, GH29:84.1CUPP) functions as a strict α1,3/4 fucosidase. PgoldGH29C (cluster14GH29BERT, GH29:29.1CUPP) displays unprecedented substrate specificity for α1,2/3/4 disaccharides. PgoldGH29D (cluster4GH29BERT, GH29:6.2CUPP) acts on α1,2/3/4/6 linkages similar to enzymes from GH29:6.1CUPP but prefers disaccharides over trisaccharides. These results suggest that PgoldGH29B and PgoldGH29D can contribute to mucin O-glycan degradation via their α1,3/4 and α1,2 fucosidase activity, respectively, while the natural substrates of PgoldGH29A and PgoldGH29C may be irrelevant to host-glycans. These insights enhance our understanding of the ecological niches inhabited by gut Parabacteroides and may guide similar exploration in other intriguing gut microbial species.
Insights
Gut bacteria possess alpha-L-fucosidases crucial for breaking down complex sugars. This study analyzed GH29 fucosidases in Parabacteroides, revealing diverse specificities essential for mucin O-glycan degradation and host health.
Area of Science:
- Microbiology
- Glycobiology
- Enzymology
Background:
- Gut microbes, particularly Parabacteroides, play a role in host health but their carbohydrate-active enzymes (CAZymes) are understudied.
- Alpha-L-fucosidases are key enzymes produced by gut microbes for glycan utilization.
Purpose of the Study:
- To analyze the CAZome of gut Parabacteroides, focusing on GH29 fucosidases.
- To predict and functionally validate the substrate specificities of novel GH29 fucosidases.
Main Methods:
- CAZome analysis of eleven Parabacteroides type strains.
- In silico prediction of functional profiles for 46 GH29 fucosidases.
- Enzymatic validation of four novel GH29 sequences.
Main Results:
- Parabacteroides possess the capacity to degrade mucin O-glycans, with abundant GH29 fucosidases.
- Over half of the predicted GH29 enzymes function as alpha1,3/4 fucosidases, important for Lewis antigen epitopes.
- Four novel GH29 enzymes exhibited varied specificities, including strict alpha1,3/4 fucosidase activity and broad alpha1,2/3/4/6 linkage recognition.
Conclusions:
- Specific GH29 fucosidases in Parabacteroides, such as PgoldGH29B and PgoldGH29D, contribute to mucin O-glycan degradation.
- Understanding these enzymes provides insights into the ecological roles of Parabacteroides in the gut microbiome.
- Further exploration of microbial CAZymes in other species is warranted.
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