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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
The Plasmin-Sensitive Protein Pls in Methicillin-Resistant Staphylococcus aureus (MRSA) Is a Glycoprotein
Isabelle Bleiziffer1,2, Julian Eikmeier1,2, Gottfried Pohlentz3
1Institute of Medical Microbiology, University of Münster, Münster, Germany.
Abstract:
Most bacterial glycoproteins identified to date are virulence factors of pathogenic bacteria, i.e. adhesins and invasins. However, the impact of protein glycosylation on the major human pathogen Staphylococcus aureus remains incompletely understood. To study protein glycosylation in staphylococci, we analyzed lysostaphin lysates of methicillin-resistant Staphylococcus aureus (MRSA) strains by SDS-PAGE and subsequent periodic acid-Schiff's staining. We detected four (>300, ∼250, ∼165, and ∼120 kDa) and two (>300 and ∼175 kDa) glycosylated surface proteins with strain COL and strain 1061, respectively. The ∼250, ∼165, and ∼175 kDa proteins were identified as plasmin-sensitive protein (Pls) by mass spectrometry. Previously, Pls has been demonstrated to be a virulence factor in a mouse septic arthritis model. The pls gene is encoded by the staphylococcal cassette chromosome (SCC)mec type I in MRSA that also encodes the methicillin resistance-conferring mecA and further genes. In a search for glycosyltransferases, we identified two open reading frames encoded downstream of pls on the SCCmec element, which we termed gtfC and gtfD. Expression and deletion analysis revealed that both gtfC and gtfD mediate glycosylation of Pls. Additionally, the recently reported glycosyltransferases SdgA and SdgB are involved in Pls glycosylation. Glycosylation occurs at serine residues in the Pls SD-repeat region and modifying carbohydrates are N-acetylhexosaminyl residues. Functional characterization revealed that Pls can confer increased biofilm formation, which seems to involve two distinct mechanisms. The first mechanism depends on glycosylation of the SD-repeat region by GtfC/GtfD and probably also involves eDNA, while the second seems to be independent of glycosylation as well as eDNA and may involve the centrally located G5 domains. Other previously known Pls properties are not related to the sugar modifications. In conclusion, Pls is a glycoprotein and Pls glycosyl residues can stimulate biofilm formation. Thus, sugar modifications may represent promising new targets for novel therapeutic or prophylactic measures against life-threatening S. aureus infections.
Insights
Protein glycosylation of Staphylococcus aureus plasmin-sensitive protein (Pls) enhances biofilm formation. This study identifies key glycosyltransferases and N-acetylhexosaminyl residues involved, suggesting novel therapeutic targets against S. aureus infections.
Area of Science:
- Microbiology
- Glycobiology
- Bacterial Pathogenesis
Background:
- Protein glycosylation is crucial for bacterial virulence factors, but its role in Staphylococcus aureus remains unclear.
- Staphylococcus aureus, a major human pathogen, possesses complex glycosylation pathways impacting its pathogenicity.
Purpose of the Study:
- To investigate the impact of protein glycosylation on Staphylococcus aureus virulence.
- To identify glycosylated proteins and the enzymes responsible for their modification in MRSA.
- To elucidate the functional role of Pls glycosylation in bacterial behavior, particularly biofilm formation.
Main Methods:
- Analysis of methicillin-resistant Staphylococcus aureus (MRSA) lysates using SDS-PAGE and periodic acid-Schiff's staining.
- Mass spectrometry to identify glycosylated proteins, including plasmin-sensitive protein (Pls).
- Gene expression and deletion analyses to identify glycosyltransferases (GtfC, GtfD, SdgA, SdgB) involved in Pls glycosylation.
Main Results:
- Identified multiple glycosylated surface proteins in MRSA, with Pls being a major target.
- Discovered GtfC and GtfD, encoded on the SCCmec element, as key enzymes mediating Pls glycosylation at serine residues.
- Demonstrated that Pls glycosylation significantly enhances biofilm formation through distinct mechanisms, some involving eDNA.
Conclusions:
- Pls is a glycoprotein in Staphylococcus aureus, and its glycosylation is mediated by GtfC/GtfD and other enzymes.
- Pls glycosylation plays a critical role in stimulating biofilm formation, a key virulence factor.
- Targeting these sugar modifications offers potential for novel therapeutic and prophylactic strategies against S. aureus infections.
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