ArticleBiophysical journal2023
Distinct platelet F-actin patterns and traction forces on von Willebrand factor versus fibrinogen.
Article in Biophysical journal, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 10 citations in OpenAlex.
- Mechanotransduction of Magnetically Applied Forces Leads to Mechanical Stiffening of Platelet-Rich Plugs.Advanced healthcare materials · 2026Article
- Platelets pull: how thrombin drives contractility.Blood advances · 2026Article
- Regulation of platelet contractility by agonists present across a thrombus.Blood advances · 2026Article
- Materials and measurement in mechanobiology.Biophysical journal · 2025Article
- Uncertainty-aware traction force microscopy.PLoS computational biology · 2025Article
- Fragmented thrombi, targeted solutions: Exploring GPVI inhibition in high-shear environments.Biophysical journal · 2025Article
- Filamin A regulates platelet shape change and contractile force generation via phosphorylation of the myosin light chain.The Biochemical journal · 2024Article
- Single-pericyte nanomechanics measured by contraction cytometry.APL bioengineering · 2024Article
- Celebrating the creative scientific life of Ken Jacobson.Biophysical journal · 2023Article
Corrections and comments
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Authors and funding
11 authors at 2 institutions in 1 country.
Funding
Abstract
Upon vascular injury, platelets form a hemostatic plug by binding to the subendothelium and to each other. Platelet-to-matrix binding is initially mediated by von Willebrand factor (VWF) and platelet-to-platelet binding is mediated mainly by fibrinogen and VWF. After binding, the actin cytoskeleton of a platelet drives its contraction, generating traction forces that are important to the cessation of bleeding. Our understanding of the relationship between adhesive environment, F-actin morphology, and traction forces is limited. Here, we examined F-actin morphology of platelets attached to surfaces coated with fibrinogen and VWF. We identified distinct F-actin patterns induced by these protein coatings and found that these patterns were identifiable into three classifications via machine learning: solid, nodular, and hollow. We observed that traction forces for platelets were significantly higher on VWF than on fibrinogen coatings and these forces varied by F-actin pattern. In addition, we analyzed the F-actin orientation in platelets and noted that their filaments were more circumferential when on fibrinogen coatings and having a hollow F-actin pattern, while they were more radial on VWF and having a solid F-actin pattern. Finally, we noted that subcellular localization of traction forces corresponded to protein coating and F-actin pattern: VWF-bound, solid platelets had higher forces at their central region while fibrinogen-bound, hollow platelets had higher forces at their periphery. These distinct F-actin patterns on fibrinogen and VWF and their differences in F-actin orientation, force magnitude, and force localization could have implications in hemostasis, thrombus architecture, and venous versus arterial thrombosis.
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