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Ksiazek, M.

Publications and source records attributed to Ksiazek, M..

3 recordsLinked to original sources

Innocent until proven guilty: Tannerella forsythia may attenuate the virulence of Porphyromonas gingivalis

Periodontitis is caused by a dysbiotic microbiome beneath the gum line, primarily driven by the major pathobionts Porphyromonas gingivalis (Pg) and Tannerella forsythia (Tf). Their virulence depends on the excessive, uncontrolled activity of secreted proteases that sustain chronic inflammation, leading to the destruction of tissues supporting the tooth. Paradoxically, Tf also encodes multiple protease inhibitors, including miropin, a serpin with a broad range of targets. Here, we demonstrate that both native and recombinant miropin effectively inhibit lysine-specific gingipain (Kgp) and thiol protease (Tpr), impairing the growth of Pg in peptide-limited media and reducing its virulence in vivo. A rationally designed variant, RVK-miropin, also inhibited both lysine-specific and arginine-specific gingipains, fully suppressing Pg proliferation and virulence in a mouse infection model. Miropin is abundant on the surface of Tf and forms covalent inhibitory complexes with Pg proteases. In an oral gavage model of periodontitis, coinfection with wild-type Tf (but not a miropin-deficient mutant) and Pg significantly reduced alveolar bone loss caused by Pg alone. Miropin thus counteracts Pg virulence factors and host inflammatory responses, revealing an unexpected protective role for Tf. This challenges the traditional view of Tf as a primary periodontal pathogen, suggesting a context-dependent role as a microbial modulator within the dysbiotic biofilm. Beyond periodontal disease, the unique ability of miropin to inhibit structurally diverse proteases makes it a promising candidate for the development of new therapies that restore proteolytic balance in the periodontium.

microbiology↗

Periodontopathogens interfere with the human renin-angiotensin system through a surface-attached protease

The renin-angiotensin system (RAS) executes its functions through biologically active peptides, angiotensins (Ang). Angiotensinogen-derived precursor, Ang I is cleaved by angiotensin-converting enzyme (ACE) into proinflammatory Ang II, which increases blood pressure. In the alternate pathway performed by neprilysin and ACE II, Ang 1-7 is produced from Ang I with activities opposite to Ang II. Here, we show that Porphyromonas gingivalis (Pg) and Tannerella forsythia (Tf), endogenous oral pathogens, direct RAS into generation of Ang 1-7 through endopeptidases O, PgPepO and TfPepO, respectively. PepOs are thermophilic metalloproteases inhibited by cation chelators, but not by specific ACE and neprilysin inhibitors. PgPepO and TfPepO prefer large hydrophobic amino acids at the carbonyl side of scissile peptide bonds (P1 position), and TfPepO, contrary to all known homologous proteases, hydrolyzes substrates away from both terminuses. Solved crystal structures show that exceptionally wide entrance to the catalytic cleft explains unique properties of TfPepO. Furthermore, the different nature of subsites S1 and S2 in the substrate binding site explains refractory of PepOs to inhibitors of human homologous proteases. Multiple immunoassays clearly show that PepOs are attached to the bacteria cell surface and are released in outer membrane vesicles. Moreover, PepO is responsible for Ang I hydrolysis by Pg and Tf. Finally, PepO deletion reduced only the virulence of Tf in the Galleria mellonella model. Thus, our data show that Pg and Tf interfere with RAS through a PepO protease.

microbiology↗

The essential Porphyromonas gingivalis type IX secretion system component PorZ delivers anionic-lipopolysaccharide to the PorU sortase for transpeptidase processing of cargos

Cargo proteins of the type IX secretion system (T9SS) in human pathogens from phylum Bacteroidetes invariably possess a conserved C-terminal domain (CTD) that functions as a signal for outer membrane (OM) translocation. In Porphyromonas gingivalis, the CTD of selected cargos is cleaved off after translocation, and anionic lipopolysaccharide (A-LPS) is attached. This transpeptidase reaction anchors secreted proteins to the OM. PorZ, a cell surface-associated protein, is an essential component of the T9SS whose function was previously unknown. We recently solved the crystal structure of PorZ, and found that it consists of two {beta}-propeller moieties followed by a CTD. In this study, we performed structure-based modelling suggesting that PorZ is a carbohydrate-binding protein. We found that recombinant PorZ specifically binds A-LPS. Binding was blocked by monoclonal antibodies that specifically react with a phosphorylated branched mannan in the anionic polysaccharide (A-PS) component of the A-LPS, but not with the core oligosaccharide or the lipid A endotoxin. Examination of A-LPS derived from a cohort of mutants producing various truncations of A-PS confirmed that the phosphorylated branched mannan is indeed the PorZ ligand. Moreover, purified recombinant PorZ interacted with the PorU sortase in an A-LPS-dependent manner. This interaction on the cell surface is crucial for the function of the attachment complex composed of PorU, PorZ, and the integral OM {beta}-barrel proteins PorV and PorQ, which is involved in post-translational modification and retention of T9SS cargos on the bacterial surface. Author summaryBacteria have evolved multiple systems to transport effector proteins to their surface or into the surrounding milieu. These proteins have a wide range of functions, including attachment, motility, nutrient acquisition, and toxicity in the host. Porphyromonas gingivalis, the human pathogen responsible for severe gum diseases (periodontitis), uses a recently characterized type IX secretion system (T9SS) to translocate and anchor secreted virulence effectors to the cell surface. Anchorage is facilitated by sortase, an enzyme that covalently attaches T9SS cargo proteins to a unique anionic lipopolysaccharide (A-LPS) moiety of P. gingivalis. Here, we show that the T9SS component PorZ interacts with sortase and specifically binds A-LPS. Binding is mediated by a phosphorylated branched mannan repeat in A-LPS polysaccharide. A-LPS- bound PorZ interacts with sortase with significantly greater affinity, facilitating modification of cargo proteins by the cell-surface attachment complex of the T9SS.

microbiology↗