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Updated: Mar 23, 2026

Investigating von Willebrand Factor Pathophysiology Using a Flow Chamber Model of von Willebrand Factor-platelet String Formation
Published on: August 14, 2017
The functions of the A1A2A3 domains in von Willebrand factor include multimerin 1 binding
D'Andra N Parker, Subia Tasneem, Richard W Farndale
1Catherine P. M. Hayward, McMaster University Medical Centre, HSC 2N29A, 1200 Main St. West, Hamilton, Ontario, Canada L8N 3Z5, Tel.: +1 905 521 2100 Ext. 76274, Fax: +1 905 521 2338,
Abstract:
Multimerin 1 (MMRN1) is a massive, homopolymeric protein that is stored in platelets and endothelial cells for activation-induced release. In vitro, MMRN1 binds to the outer surfaces of activated platelets and endothelial cells, the extracellular matrix (including collagen) and von Willebrand factor (VWF) to support platelet adhesive functions. VWF associates with MMRN1 at high shear, not static conditions, suggesting that shear exposes cryptic sites within VWF that support MMRN1 binding. Modified ELISA and surface plasmon resonance were used to study the structural features of VWF that support MMRN1 binding, and determine the affinities for VWF-MMRN1 binding. High shear microfluidic platelet adhesion assays determined the functional consequences for VWF-MMRN1 binding. VWF binding to MMRN1 was enhanced by shear exposure and ristocetin, and required VWF A1A2A3 region, specifically the A1 and A3 domains. VWF A1A2A3 bound to MMRN1 with a physiologically relevant binding affinity (KD: 2.0 ± 0.4 nM), whereas the individual VWF A1 (KD: 39.3 ± 7.7 nM) and A3 domains (KD: 229 ± 114 nM) bound to MMRN1 with lower affinities. VWF A1A2A3 was also sufficient to support the adhesion of resting platelets to MMRN1 at high shear, by a mechanism dependent on VWF-GPIbα binding. Our study provides new information on the molecular basis of MMRN1 binding to VWF, and its role in supporting platelet adhesion at high shear. We propose that at sites of vessel injury, MMRN1 that is released following activation of platelets and endothelial cells, binds to VWF A1A2A3 region to support platelet adhesion at arterial shear rates.
Insights
Multimerin 1 (MMRN1) binds to von Willebrand factor (VWF) under high shear conditions, enhancing platelet adhesion. This interaction, mediated by the VWF A1A2A3 region, is crucial for supporting platelet function at arterial shear rates.
Area of Science:
- Biochemistry
- Hematology
- Cell Biology
Background:
- Multimerin 1 (MMRN1) is a protein stored in platelets and endothelial cells.
- MMRN1 supports platelet adhesive functions by binding to activated cells, extracellular matrix, and von Willebrand factor (VWF).
- VWF association with MMRN1 occurs under high shear, suggesting shear-induced exposure of binding sites.
Purpose of the Study:
- To investigate the structural basis of MMRN1 binding to VWF.
- To determine the affinity and functional consequences of VWF-MMRN1 interactions.
- To elucidate the role of MMRN1-VWF binding in supporting platelet adhesion under shear stress.
Main Methods:
- Modified ELISA and surface plasmon resonance to analyze VWF structural features and binding affinities.
- High shear microfluidic platelet adhesion assays to assess functional consequences.
- Investigated binding of VWF A1A2A3 region and individual domains (A1, A3) to MMRN1.
Main Results:
- VWF binding to MMRN1 was enhanced by shear exposure and ristocetin.
- The VWF A1A2A3 region, particularly A1 and A3 domains, was essential for MMRN1 binding.
- VWF A1A2A3 bound MMRN1 with high affinity (KD: 2.0 nM), while individual domains had lower affinities.
- VWF A1A2A3 supported platelet adhesion to MMRN1 at high shear via VWF-GPIbα interaction.
Conclusions:
- MMRN1 binding to VWF is shear-dependent and involves the VWF A1A2A3 region.
- MMRN1-VWF interaction has a physiologically relevant high affinity and supports platelet adhesion at arterial shear rates.
- Released MMRN1 may bind VWF at sites of vascular injury to promote platelet adhesion under flow conditions.
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