Literature DB >> 25391881

Mirolase, a novel subtilisin-like serine protease from the periodontopathogen Tannerella forsythia.

Miroslaw Ksiazek, Abdulkarim Y Karim, Danuta Bryzek, Jan J Enghild, Ida B Thøgersen, Joanna Koziel, Jan Potempa.   

Abstract

The genome of Tannerella forsythia, an etiological factor of chronic <span class="Disease">periodontitis, contains several genes encoding putative proteases. Here, we characterized a subtilisin-like serine protease of T. forsythia referred to as mirolase. Recombinant full-length latent promirolase [85 kDa, without its signal peptide (SP)] processed itself through sequential autoproteolytic cleavages into a mature enzyme of 40 kDa. Mirolase latency was driven by the N-terminal prodomain (NTP). In stark contrast to almost all known subtilases, the cleaved NTP remained non-covalently associated with mirolase, inhibiting its proteolytic, but not amidolytic, activity. Full activity was observed only after the NTP was gradually, and fully, degraded. Both activity and processing was absolutely dependent on calcium ions, which were also essential for enzyme stability. As a consequence, both serine protease inhibitors and calcium ions chelators inhibited mirolase activity. Activity assays using an array of chromogenic substrates revealed that mirolase specificity is driven not only by the substrate-binding subsite S1, but also by other subsites. Taken together, mirolase is a calcium-dependent serine protease of the S8 family with the unique mechanism of activation that may contribute to T. forsythia pathogenicity by degradation of fibrinogen, hemoglobin, and the antimicrobial peptide LL-37.

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Year:  2015        PMID: 25391881      PMCID: PMC4682893          DOI: 10.1515/hsz-2014-0256

Source DB:  PubMed          Journal:  Biol Chem        ISSN: 1431-6730            Impact factor:   3.915


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Authors:  C H Fox
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