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Updated: Jun 26, 2026

Identification and Characterization of Protein Glycosylation using Specific Endo- and Exoglycosidases
Published on: December 26, 2011
Identification of a pneumococcal glycosidase that modifies O-linked glycans
Carolyn Marion1, Dominique H Limoli, Gregory S Bobulsky
1Center for Microbial Pathogenesis, The Research Institute at Nationwide Children's Hospital, Columbus, Ohio, USA.
Abstract:
Colonization of the airway by Streptococcus pneumoniae is typically asymptomatic; however, progression of bacteria beyond the oronasopharynx can cause diseases including otitis media and pneumonia. The mechanisms by which S. pneumoniae establishes and maintains colonization remain poorly understood. Both N-linked and O-linked glycans are abundant in the airway. Our previous research demonstrated that S. pneumoniae can sequentially deglycosylate N-linked glycans and suggested that this modification of sugar structures may aid in colonization. There is published evidence that S. pneumoniae expresses a secreted O-glycosidase that cleaves galactose beta1-3 N-acetylgalactosamine (Galbeta1-3GalNAc) from core-1 O-linked glycans; however, the biological function of this enzyme has not previously been determined. We established that the activity is not secreted but is instead surface associated in a sortase-dependent manner. Genome analysis revealed an open reading frame predicted to encode a sortase-dependent surface protein with sequence similarity to the O-glycosidase of Bifidobacterium longum. Deletion of this pneumococcal open reading frame confirmed that this gene encodes an O-glycosidase. Experiments using a model glycoconjugate demonstrated that this O-glycosidase, together with the neuraminidase NanA, is required for S. pneumoniae to cleave sialylated core-1 O-linked glycans. The ability of the O-glycosidase mutant to cleave this glycan structure was restored by both genetic complementation and the addition of O-glycosidase. The mutant showed a reduction in adherence to human airway epithelial cells and a significantly decreased ability to colonize the upper respiratory tract, suggesting that cleavage of core-1 O-linked glycans enhances the ability of S. pneumoniae to colonize the human airway.
Insights
Streptococcus pneumoniae uses a surface O-glycosidase to cleave airway O-linked glycans. This process enhances bacterial adherence and colonization in the human upper respiratory tract.
Area of Science:
- Microbiology
- Glycobiology
- Bacterial Pathogenesis
Background:
- Streptococcus pneumoniae colonization is often asymptomatic but can lead to diseases like pneumonia.
- Mechanisms of S. pneumoniae airway colonization are not fully understood.
- Airways contain abundant N-linked and O-linked glycans, which S. pneumoniae may modify.
Purpose of the Study:
- To determine the biological function of a putative O-glycosidase in S. pneumoniae.
- To investigate the role of O-linked glycan cleavage in S. pneumoniae colonization.
Main Methods:
- Characterized the O-glycosidase activity as surface-associated and sortase-dependent.
- Identified and deleted the gene encoding the O-glycosidase.
- Assessed glycan cleavage using a model glycoconjugate and measured bacterial adherence and colonization in vivo.
Main Results:
- Confirmed the identified gene encodes a functional O-glycosidase.
- Demonstrated that O-glycosidase and neuraminidase NanA are required for cleaving sialylated core-1 O-linked glycans.
- An O-glycosidase mutant showed reduced adherence to airway epithelial cells and impaired upper respiratory tract colonization.
Conclusions:
- Cleavage of core-1 O-linked glycans by S. pneumoniae O-glycosidase is crucial for efficient airway colonization.
- Surface-associated O-glycosidase activity contributes to bacterial pathogenesis by modifying host glycans.
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