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Published on: August 20, 2018
Characterization of the fibrinogen binding domain of bacteriophage lysin from Streptococcus mitis
1Division of Infectious Diseases, VA Medical Center, 4150 Clement St., San Francisco, CA 94121, USA.
Abstract:
The binding of bacteria to human platelets is a likely central mechanism in the pathogenesis of infective endocarditis. Platelet binding by Streptococcus mitis SF100 is mediated in part by a lysin encoded by the lysogenic bacteriophage SM1. In addition to its role in the phage life cycle, lysin mediates the binding of S. mitis to human platelets via its interaction with fibrinogen on the platelet surface. To better define the region of lysin mediating fibrinogen binding, we tested a series of purified lysin truncation variants for their abilities to bind this protein. These studies revealed that the fibrinogen binding domain of lysin is contained within the region spanned by amino acid residues 102 to 198 (lysin(102-198)). This region has no sequence homology to other known fibrinogen binding proteins. Lysin(102-198) bound fibrinogen comparably to full-length lysin and with the same selectivity for the fibrinogen Aα and Bβ chains. Lysin(102-198) also inhibited the binding in vitro of S. mitis to human fibrinogen and platelets. When assessed by platelet aggregometry, the disruption of the lysin gene in SF100 resulted in a significantly longer time to the onset of aggregation of human platelets than that of the parent strain. The preincubation of platelets with purified lysin(102-198) also delayed the onset of aggregation by SF100. These results indicate that the binding of lysin to fibrinogen is mediated by a specific domain of the phage protein and that this interaction is important for both platelet binding and aggregation by S. mitis.
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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