Streptococcus uberis plasminogen activator (SUPA) activates human plasminogen through novel species-specific and

Yi Zhang1, Inna P Gladysheva, Aiilyan K Houng

  • 1Department of Medicine, The University of Tennessee Health Science Center, Memphis, Tennessee 38163, USA.

Insights

Bacterial plasminogen activators typically target specific host species. However, Streptococcus uberis plasminogen activator (SUPA) can activate human plasminogen in the presence of human fibrin, suggesting new therapeutic possibilities.

Area of Science:

  • Biochemistry
  • Microbiology
  • Thrombosis

Background:

  • Bacterial plasminogen (Pg) activators generate plasmin to degrade fibrin, influencing infection pathogenesis.
  • Bacterial Pg activator activity is generally restricted to their host mammalian species' Pg.
  • Streptococcus uberis plasminogen activator (SUPA) infects cows but not humans.

Purpose of the Study:

  • To investigate the species-specificity of Streptococcus uberis plasminogen activator (SUPA).
  • To determine if human fibrin can override the species-restricted activity of SUPA.
  • To explore potential therapeutic applications of bacterial Pg activators.

Main Methods:

  • Purified systems and plasma assays were used to test SUPA activity on bovine and human Pg.
  • Binding avidity studies measured SUPA complex formation with bovine and human Pg.
  • Fibrin's influence on SUPA-human Pg interaction, plasmin stability, and activation kinetics was assessed.

Main Results:

  • SUPA robustly activated bovine Pg but not human Pg in purified systems and plasma.
  • SUPA formed a significantly higher avidity complex with bovine Pg (118-fold) than human Pg.
  • Human fibrin enhanced SUPA binding to human Pg (4-8-fold) and protected human plasmin from inactivation, increasing catalytic efficiency (6-fold).

Conclusions:

  • Indirect molecular interactions, such as with fibrin, can override the species-restricted activity of bacterial Pg activators.
  • This finding has implications for understanding infection pathogenesis.
  • Exploiting these interactions could lead to novel blood clot-dissolving drugs.

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