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  • Metal-mediated modulation of streptococcal cysteine protease activity and its biological implications.

Metal-mediated modulation of streptococcal cysteine protease activity and its biological implications.

Infection and immunity (2014-05-07)
Karthickeyan Chella Krishnan, Santhosh Mukundan, Julio A Landero Figueroa, Joseph A Caruso, Malak Kotb
ZUSAMMENFASSUNG

Streptococcal cysteine protease (SpeB), the major secreted protease produced by group A streptococcus (GAS), cleaves both host and bacterial proteins and contributes importantly to the pathogenesis of invasive GAS infections. Modulation of SpeB expression and/or its activity during invasive GAS infections has been shown to affect bacterial virulence and infection severity. Expression of SpeB is regulated by the GAS CovR-CovS two-component regulatory system, and we demonstrated that bacteria with mutations in the CovR-CovS two-component regulatory system are selected for during localized GAS infections and that these bacteria lack SpeB expression and exhibit a hypervirulent phenotype. Additionally, in a separate study, we showed that expression of SpeB can also be modulated by human transferrin- and/or lactoferrin-mediated iron chelation. Accordingly, the goal of this study was to investigate the possible roles of iron and other metals in modulating SpeB expression and/or activity in a manner that would potentiate bacterial virulence. Here, we report that the divalent metals zinc and copper inhibit SpeB activity at the posttranslational level. Utilizing online metal-binding site prediction servers, we identified two putative metal-binding sites in SpeB, one of which involves the catalytic-dyad residues (47)Cys and (195)His. Based on our findings, we propose that zinc and/or copper availability in the bacterial microenvironment can modulate the proteolytic activity of SpeB in a manner that preserves the integrity of several other virulence factors essential for bacterial survival and dissemination within the host and thereby may exacerbate the severity of invasive GAS infections.

MATERIALIEN
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Natriumdodecylsulfat, BioReagent, suitable for electrophoresis, for molecular biology, ≥98.5% (GC)
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Natriumdodecylsulfat, ≥99.0% (GC), dust-free pellets
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Magnesiumchlorid -Lösung, for molecular biology, 1.00 M±0.01 M
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DL-Dithiothreitol -Lösung, BioUltra, for molecular biology, ~1 M in H2O
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Natriumdodecylsulfat -Lösung, BioUltra, for molecular biology, 10% in H2O
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