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Updated: Apr 25, 2026

Ferric Chloride-induced Murine Thrombosis Models
Published on: September 5, 2016
Platelets and their chemokines in atherosclerosis-clinical applications
Philipp von Hundelshausen1, Martin M N Schmitt2
1Institute for Cardiovascular Prevention, Ludwig-Maximilians-University of Munich Munich, Germany ; German Centre for Cardiovascular Research (DZHK), Partner Site Munich Heart Alliance Munich, Germany.
Insights
Platelets significantly contribute to atherosclerosis development through inflammatory and thrombotic roles. Key platelet mediators and surface molecules influence T cell and macrophage function, cholesterol metabolism, and arterial wall interactions, impacting disease progression.
Area of Science:
- Cardiovascular Biology
- Immunology
- Hematology
Background:
- Atherosclerosis pathogenesis involves complex inflammatory and thrombotic processes.
- The role of platelets in human atherosclerosis remains challenging to fully elucidate.
- Platelet indices and mediators are linked to atherosclerosis development and complications.
Purpose of the Study:
- To review the multifaceted roles of platelets in atherogenesis.
- To highlight specific platelet-derived chemokines (CXCL4, CCL5, CXCL12) and their atherogenic/atheroprotective functions.
- To discuss platelet surface molecules and their interactions in the context of atherosclerosis.
Main Methods:
- Review of experimental and clinical evidence on platelet function in atherosclerosis.
- Analysis of molecular mechanisms involving platelet mediators and surface receptors.
- Examination of platelet interactions with endothelial cells, leukocytes, and lipoproteins.
Main Results:
- Platelet chemokines CXCL4 and CCL5 promote atherogenesis by influencing immune cell behavior and recruitment.
- CXCL12 exhibits atheroprotective effects by promoting endothelial healing.
- Platelet surface molecules (GPIIb/IIIa, P-selectin, etc.) mediate crucial interactions in atherogenesis.
- Platelets impact cholesterol metabolism and foam cell formation through LDL interaction.
Conclusions:
- Platelets are central players in atherosclerosis, exhibiting both pro-inflammatory and atheroprotective functions.
- Understanding platelet mechanisms is crucial for developing novel therapeutic strategies against atherosclerosis.
- Targeting platelet-derived mediators and surface molecules offers potential for preventing atherosclerotic complications.
Abstract:
The concept of platelets as important players in the process of atherogenesis has become increasingly accepted due to accumulating experimental and clinical evidence. Despite the progress in understanding the molecular details of atherosclerosis, particularly by using animal models, the inflammatory and thrombotic roles of activated platelet s especially in the human system remain difficult to dissect, as often only the complications of atherosclerosis, i.e., stroke and myocardial infarction are definable but not the plaque burden. Platelet indices including platelet count and mean platelet volume (MPV) and soluble mediators released by activated platelets are associated with atherosclerosis. The chemokine CXCL4 has multiple atherogenic activities, e.g., altering the differentiation of T cells and macrophages by inhibiting neutrophil and monocyte apoptosis and by increasing the uptake of oxLDL and synergizing with CCL5. CCL5 is released and deposited on endothelium by activated platelets thereby triggering atherogenic monocyte recruitment, which can be attenuated by blocking the corresponding chemokine receptor CCR5. Atheroprotective and plaque stabilizing properties are attributed to CXCL12, which plays an important role in regenerative processes by attracting progenitor cells. Its release from luminal attached platelets accelerates endothelial healing after injury. Platelet surface molecules GPIIb/IIIa, GP1bα, P-selectin, JAM-A and the CD40/CD40L dyade are crucially involved in the interaction with endothelial cells, leukocytes and matrix molecules affecting atherogenesis. Beyond the effects on the arterial inflammatory infiltrate, platelets affect cholesterol metabolism by binding, modifying and endocytosing LDL particles via their scavenger receptors and contribute to the formation of lipid laden macrophages. Current medical therapies for the prevention of atherosclerotic therapies enable the elucidation of mechanisms linking platelets to inflammation and atherosclerosis.
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