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Published on: June 11, 2015
Human alpha -defensins neutralize fibrinolytic activity exerted by staphylokinase
Maria Bokarewa1, Andrej Tarkowski
1Department of Rheumatology and Inflammation Research, Sahlgrenska University Hospital, Guldhedsgatan 10, S-413 46 Göteborg, Sweden. maria.bokarewa@rheuma.gu.se
Insights
Defensins bind to staphylokinase, reducing its ability to break down blood clots. This interaction may lower the effectiveness of staphylokinase therapy at vascular occlusion sites.
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiovascular Research
Background:
- Defensins are cationic peptides with bacteriolytic properties found at inflammation sites and in coronary vessels.
- Vascular occlusive diseases are treated with staphylokinase, a bacterial plasminogen activator.
- The interaction between defensins and staphylokinase in patients is not well understood.
Purpose of the Study:
- To investigate the interaction between defensins and staphylokinase.
- To determine the functional consequences of this interaction on fibrinolytic activity.
- To identify structural requirements for staphylokinase/defensin binding.
Main Methods:
- ELISA-based system to assess binding.
- Measurement of plasminogen activation capacity.
- Fibrinolysis assay.
- Study of staphylokinase mutant variants.
Main Results:
- Staphylokinase and defensins showed strong, dose-dependent binding.
- Urokinase exhibited minimal binding to defensins.
- Complex formation significantly decreased staphylokinase's plasminogen activation capacity (p<0.002).
- Defensins inhibited staphylokinase-triggered fibrinolysis.
- Binding likely involves the serine protease-like domain of staphylokinase.
Conclusions:
- Complex formation between staphylokinase and alpha-defensins reduces fibrinolytic activity.
- This interaction may downregulate staphylokinase's fibrinolytic effects at vascular occlusion sites.
- Findings suggest potential clinical implications for thrombolytic therapy.
Abstract:
Defensins, cationic peptides with bacteriolytic properties, are abundantly found at inflammation sites and in human coronary vessels. Vascular occlusive diseases, such as myocardial infarction, pulmonary embolism, and peripheral arterial occlusion are presently treated by thrombolytic intervention using staphylokinase, a plasminogen activator of bacterial origin. In this study we assessed a possible interaction between defensins and staphylokinase, both molecules being present in an acutely ill patient. Using an ELISA-based system, we found that staphylokinase and defensins displayed a strong and dose-dependent binding. In contrast, urokinase, another plasminogen activator of endogenous origin, displayed only minimal binding to defensins. Next, we proved that interaction between staphylokinase and defensins led to functional consequences resulting in a significant decrease (p<0.002) of plasminogen activation capacity upon complex formation. In contrast, urokinase retained most of its activity even in 10-fold molar excess of defensins. Finally, we found that staphylokinase-triggered lysis of fibrin was efficiently inhibited in the presence of defensins. To assess structural requirements for staphylokinase/defensin interaction, six staphylokinase mutant variants were studied. Inactivation pattern of the tested staphylokinase variants suggested a direct binding of defensins to serine protease-like domain of staphylokinase. In conclusion, we show complex formation between staphylokinase and alpha-defensins resulting in a significant reduction of fibrinolytic activity. This finding may have clinical implications, since fibrinolytic effects of staphylokinase may be downregulated at the site of vascular occlusion.
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