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March 6, 2026Bulletin of Mathematical Biology2 citationsOpen Access

Platelet Adhesion and Aggregation Dynamics over Collagen- and VWF-coated Surfaces: Insights from Dissipative Particle Dynamics Simulations and Microfluidic Experiments

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ATAnik TarafderSWShigang WangYWY. Wu

Key Points

  • This research aims to understand platelet adhesion and aggregation mechanisms on collagen and VWF surfaces under flow conditions.
  • Performed dissipative particle dynamics simulations
  • Conducted microfluidic experiments with collagen- and VWF-coated channels
  • Used a viscoelastic spring-dashpot system to model interactions
  • Applied a probabilistic approach to analyze attachment and detachment
  • Observed multilayer clots on collagen-coated surfaces
  • Found isolated single-layer adhesion on VWF-coated surfaces
  • Platelet-covered area increases over time on collagen but plateaus on VWF surfaces

Abstract

Abstract Platelet adhesion and aggregation at sites of vascular injury play a critical role in both physiological hemostasis and pathological thrombosis. Platelets rely on their surface receptors to form bonds with von Willebrand factor (VWF) and exposed subendothelial collagen to initiate the clotting process. Clot formation is a complex, multistep phenomenon involving mechanical and biochemical signaling that activates key surface receptors and drives morphological changes to form aggregates. Here, we perform dissipative particle dynamics (DPD) simulations in combination with experiments using collagen- and VWF-coated microfluidic channels perfused with human blood to investigate platelet adhesion and aggregation mechanisms under physiological flow conditions. We use a viscoelastic spring-dashpot system to model platelet-platelet and platelet-coated surface interactions and introduce a probabilistic approach to capture platelet attachment or detachment on collagen- and VWF-coated surfaces. We quantitatively compare our numerical simulation with experimental results and explain the observed dynamics. Our simulation results show scattered multilayer clots over collagen-coated surfaces, and single-layer, isolated platelet adhesion on VWF-coated surfaces, corroborating experimental observations. The platelet-covered area over collagen-coated surfaces monotonically increases over time, whereas it reaches a plateau after a period of perfusion on VWF-coated surfaces.

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Cite This Study

Tarafder et al. (2026) studied this question.

synapsesocial.com/papers/69aa701a531e4c4a9ff59833https://doi.org/10.1007/s11538-026-01615-5
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