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de Mojana di Cologna, N.

Publications and source records attributed to de Mojana di Cologna, N..

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Post-translational modification by the Pgf glycosylation machinery modulates Streptococcus mutans physiology and virulence

Streptococcus mutans is a keystone pathogen of dental caries, and the ability to form biofilms is essential for its pathogenicity. We identified a glycosylation machinery (Pgf) in S. mutans that post-translationally modifies two surface-associated adhesins, Cnm and WapA. The four pgf genes (pgfS, pgfM1, pgfE, and pgfM2) are part of S. mutans core genome and we hypothesized that the scope of Pgf goes beyond Cnm and WapA. By inactivating each pgf gene individually or creating a quadruple pgf mutant in S. mutans OMZ175, we showed that the Pgf machinery is important for biofilm formation. Compared to OMZ175, differences in surface charge, membrane stability, and genetic competence were also observed for most mutants. Importantly, in silico analyses and tunicamycin MIC assays suggest a functional redundancy between the Pgf machinery and the rhamnose-glucose polysaccharide synthesis pathway. Using a rat oral colonization model, we showed a 10-fold reduction in recovered CFUs for the pgf quadruple mutant compared to OMZ175. Finally, using Cnm as a model, we showed by glycoproteomics analyses that Cnm is heavily modified with N-acetyl hexosamine in OMZ175 whereas phosphorylations were observed for the pgfS mutant. Our findings indicate that the Pgf machinery participates in important aspects of S. mutans pathobiology. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=164 SRC="FIGDIR/small/511621v1_ufig1.gif" ALT="Figure 1"> View larger version (53K): org.highwire.dtl.DTLVardef@146f37eorg.highwire.dtl.DTLVardef@11c0e45org.highwire.dtl.DTLVardef@ece1eaorg.highwire.dtl.DTLVardef@1e3f221_HPS_FORMAT_FIGEXP M_FIG C_FIG Abbreviated summaryIn this study, we demonstrate that the Pgf glycosylation machinery of Streptococcus mutans, a keystone pathogen of dental caries, regulates several aspects of bacterial pathophysiology that ultimately contribute to S. mutans fitness in oral colonization experiments. Using the heavily glycosylated Cnm adhesin as a model, we found that inactivation of the glycosyltransferase PgfS results in loss of Cnm glycosylation, but instead, Cnm became heavily phosphorylated, suggesting a crosstalk/competition between these two post-translational modification mechanisms.

microbiology↗

Amyloid aggregation of Streptococcus mutans Cnm influences its collagen-binding activity

The glycosylated collagen- and laminin-binding surface adhesin Cnm is present in approximately 20% of S. mutans clinical isolates and is associated with systemic infections and increased caries risk. Other surface-associated collagen-binding proteins of S. mutans such as P1 and WapA have been demonstrated to form an amyloid quaternary structure with functional implications within biofilms. In silico analysis predicted that the {beta}-sheet rich N-terminal collagen-binding domain (CBD) of Cnm has propensity for amyloid aggregation, whereas the threonine-rich C-terminal domain was predicted to be disorganized. In this study, thioflavin-T fluorescence and electron microscopy were used to show that Cnm forms amyloids either in its native glycosylated or recombinant non-glycosylated forms and that the CBD of Cnm is the main amyloidogenic unit of Cnm. We then performed a series of in vitro, ex vivo and in vivo assays to characterize the amylogenic properties of Cnm. In addition, Congo red birefringence indicated that Cnm is a major amyloidogenic protein of S. mutans biofilms. Competitive binding assays using collagen-coated microtiter plates and dental roots, a substrate rich in collagen, revealed that Cnm monomers inhibit S. mutans binding to collagenous substrates whereas Cnm amyloid aggregates lose this property. Thus, while Cnm contributes to recognition and initial binding of S. mutans to collagen-rich surfaces, Cnm amyloid aggregation appears to represent a mechanism to modulate this activity in mature biofilms. IMPORTANCEStreptococcus mutans is a keystone pathogen that promotes caries by acidifying the dental biofilm milieu. The collagen- and laminin-binding glycoprotein Cnm is a virulence factor found in about 20% of the clinical isolates of S. mutans. Expression of Cnm by S. mutans is associated with niche expansion, allowing colonization of multiple sites in the body including collagen-rich surfaces such as dentin and heart valves. Here, we demonstrate for the first time that Cnm function appears to be modulated by its aggregation status. As a monomer, its primary function is to promote attachment to collagenous substrates via its collagen binding domain (CBD). However, in later stages of biofilm maturation, the same CBD of Cnm self-assembles into amyloid fibrils, losing the ability to bind to collagen and likely becoming a component of the biofilm matrix. Our findings shed light into the role of functional amyloids in S. mutans pathobiology and ecology.

microbiology↗