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Biochemical and Structural Characterization of the Carbohydrate Transport Substrate-binding-protein SP0092
Published on: October 2, 2017
Molecular analysis of an enigmatic Streptococcus pneumoniae virulence factor: The raffinose-family oligosaccharide
Joanne K Hobbs1, Edward P W Meier1, Benjamin Pluvinage1
1Department of Biochemistry and Microbiology, University of Victoria, Victoria, British Columbia V8P 5C2, Canada.
Abstract:
Streptococcus pneumoniae is an opportunistic respiratory pathogen that can spread to other body sites, including the ears, brain, and blood. The ability of this bacterium to break down, import, and metabolize a wide range of glycans is key to its virulence. Intriguingly, S. pneumoniae can utilize several plant oligosaccharides for growth in vitro, including raffinose-family oligosaccharides (RFOs, which are α-(1→6)-galactosyl extensions of sucrose). An RFO utilization locus has been identified in the pneumococcal genome; however, none of the proteins encoded by this locus have been biochemically characterized. The enigmatic ability of S. pneumoniae to utilize RFOs has recently received attention because mutations in two of the RFO locus genes have been linked to the tissue tropism of clinical pneumococcal isolates. Here, we use functional studies combined with X-ray crystallography to show that although the pneumococcal RFO locus encodes for all the machinery required for uptake and degradation of RFOs, the individual pathway components are biochemically inefficient. We also demonstrate that the initiating enzyme in this pathway, the α-galactosidase Aga (a family 36 glycoside hydrolase), can cleave α-(1→3)-linked galactose units from a linear blood group antigen. We propose that the pneumococcal RFO pathway is an evolutionary relic that is not utilized in this streptococcal species and, as such, is under no selection pressure to maintain binding affinity and/or catalytic efficiency. We speculate that the apparent contribution of RFO utilization to pneumococcal tissue tropism may, in fact, be due to the essential role the ATPase RafK plays in the transport of other carbohydrates.
Insights
Streptococcus pneumoniae can break down plant sugars, but its RFO pathway is inefficient. This suggests the pathway is an evolutionary relic, with RafK
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Streptococcus pneumoniae is an opportunistic pathogen whose virulence depends on glycan metabolism.
- The bacterium possesses a raffinose-family oligosaccharide (RFO) utilization locus, but its components remain uncharacterized.
- Mutations in this locus are linked to pneumococcal tissue tropism.
Purpose of the Study:
- To biochemically and structurally characterize the proteins encoded by the S. pneumoniae RFO utilization locus.
- To investigate the functional significance of the RFO pathway in S. pneumoniae.
- To explore the potential role of the RFO pathway in pneumococcal virulence and tissue tropism.
Main Methods:
- Functional studies of RFO utilization pathway enzymes.
- X-ray crystallography to determine the structure of key enzymes.
- Biochemical assays to assess enzyme activity and efficiency.
Main Results:
- The RFO locus encodes the machinery for RFO uptake and degradation, but individual components exhibit low biochemical efficiency.
- The initiating enzyme, α-galactosidase Aga, can cleave galactose from blood group antigens.
- The RFO pathway appears to be an evolutionary relic with limited functional relevance in S. pneumoniae.
Conclusions:
- The S. pneumoniae RFO pathway is biochemically inefficient and likely not utilized by the bacterium.
- The observed link between RFO genes and tissue tropism may be due to the ATPase RafK's role in other carbohydrate transport systems.
- The Aga enzyme's ability to cleave blood group antigens warrants further investigation.
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