Characterization of the fibrinogen binding domain of bacteriophage lysin from Streptococcus mitis

Ho Seong Seo1, Paul M Sullam

  • 1Division of Infectious Diseases, VA Medical Center, 4150 Clement St., San Francisco, CA 94121, USA.

Insights

Bacterial binding to human platelets, crucial in infective endocarditis, involves Streptococcus mitis lysin. A specific domain (residues 102-198) mediates fibrinogen binding, impacting platelet aggregation.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Immunology

Background:

  • Bacterial adherence to human platelets is key in infective endocarditis pathogenesis.
  • Streptococcus mitis SF100 utilizes a lysin from bacteriophage SM1 for platelet binding.
  • Lysin interacts with platelet surface fibrinogen, mediating bacterial attachment.

Purpose of the Study:

  • To pinpoint the specific region of lysin responsible for fibrinogen binding.
  • To investigate the role of this lysin-fibrinogen interaction in S. mitis-platelet interactions.
  • To understand the contribution of lysin to bacterial-induced platelet aggregation.

Main Methods:

  • Purified lysin truncation variants were tested for fibrinogen binding.
  • Binding affinity and selectivity of lysin domains for fibrinogen chains were assessed.
  • Platelet aggregation assays were performed with wild-type and mutant S. mitis strains and purified lysin fragments.

Main Results:

  • A specific domain within lysin (amino acid residues 102-198) was identified as the primary fibrinogen-binding region.
  • Lysin(102-198) demonstrated comparable fibrinogen binding to full-length lysin, with selectivity for Aα and Bβ chains.
  • Disruption of the lysin gene or preincubation with lysin(102-198) significantly delayed S. mitis-induced platelet aggregation.

Conclusions:

  • The lysin-fibrinogen interaction is mediated by a distinct domain (lysin(102-198)).
  • This interaction is critical for Streptococcus mitis binding to human platelets.
  • The lysin-fibrinogen interaction plays a significant role in S. mitis-mediated platelet aggregation.

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