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Microlyse: a thrombolytic agent that targets VWF for clearance of microvascular thrombosis
Steven de Maat1, Chantal C Clark1, Arjan D Barendrecht1
1Central Diagnostic Laboratory Research, University Medical Center Utrecht, Utrecht University, Utrecht, The Netherlands.
Abstract:
Thrombotic microangiopathies are hallmarked by attacks of disseminated microvascular thrombosis. In thrombotic thrombocytopenic purpura (TTP), this is caused by a rise in thrombogenic ultra-large von Willebrand factor (VWF) multimers because of ADAMTS13 deficiency. We previously reported that systemic plasminogen activation is therapeutic in a TTP mouse model. In contrast to its natural activators (ie, tissue plasminogen activator and urokinase plasminogen activator [uPA]), plasminogen can directly bind to VWF. For optimal efficacy and safety, we aimed to focus and accelerate plasminogen activation at sites of microvascular occlusion. We here describe the development and characterization of Microlyse, a fusion protein consisting of a high-affinity VHH targeting the CT/CK domain of VWF and the protease domain of uPA, for localized plasminogen activation on microthrombi. Microlyse triggers targeted destruction of platelet-VWF complexes by plasmin on activated endothelial cells and in agglutination studies. At equal molar concentrations, Microlyse degrades microthrombi sevenfold more rapidly than blockade of platelet-VWF interactions with a bivalent humanized VHH (caplacizumab*). Finally, Microlyse attenuates thrombocytopenia and tissue damage (reflected by increased plasma lactate dehydrogenase activity, as well as PAI-1 and fibrinogen levels) more efficiently than caplacizumab* in an ADAMTS13-/- mouse model of TTP, without affecting hemostasis in a tail-clip bleeding model. These findings show that targeted thrombolysis of VWF by Microlyse is an effective strategy for the treatment of TTP and might hold value for other forms of VWF-driven thrombotic disease.
Insights
Microlyse, a novel fusion protein, targets and degrades von Willebrand factor (VWF) microthrombi in thrombotic thrombocytopenic purpura (TTP). This targeted approach offers a more effective treatment for TTP than current therapies, without impacting hemostasis.
Area of Science:
- Hematology
- Biochemistry
- Vascular Biology
Background:
- Thrombotic microangiopathies, including thrombotic thrombocytopenic purpura (TTP), are characterized by microvascular thrombosis.
- In TTP, this arises from ADAMTS13 deficiency leading to increased ultra-large von Willebrand factor (VWF) multimers.
- Systemic plasminogen activation has shown therapeutic potential in TTP models.
Purpose of the Study:
- To develop a targeted approach for localized plasminogen activation at microvascular occlusion sites.
- To create a fusion protein, Microlyse, for efficient and safe thrombolysis in TTP.
Main Methods:
- Development of Microlyse, a fusion protein combining a VWF-targeting VHH with the urokinase plasminogen activator (uPA) protease domain.
- Characterization of Microlyse's ability to activate plasminogen and degrade platelet-VWF complexes in vitro.
- Evaluation of Microlyse's efficacy and safety in an ADAMTS13-/- mouse model of TTP and a tail-clip bleeding model.
Main Results:
- Microlyse triggers targeted plasmin-mediated destruction of platelet-VWF complexes.
- Microlyse demonstrates a sevenfold greater degradation of microthrombi compared to caplacizumab at equal molar concentrations.
- Microlyse effectively attenuates TTP-associated thrombocytopenia and tissue damage without compromising hemostasis.
Conclusions:
- Targeted thrombolysis of VWF by Microlyse is a potent therapeutic strategy for TTP.
- Microlyse shows superior efficacy to caplacizumab in a TTP mouse model.
- Microlyse may offer a valuable treatment for other VWF-driven thrombotic disorders.
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