Platelet Activation and Autoimmunity: Mechanisms Linking Hemostasis and Cardiovascular Risk in Rheumatologic Disease
Richard Ni1, Tessa J Barrett1, Michael S Garshick1,2
1Leon H. Charney Division of Cardiology, Department of Medicine, NYU Grossman School of Medicine New York NY USA.
Platelets, classically defined by their hemostatic function, are increasingly recognized as immune effectors that shape chronic inflammation and vascular pathology in immune-mediated inflammatory diseases. In conditions such as systemic lupus erythematosus, rheumatoid arthritis, and psoriasis, immune activation skews platelet adhesion, secretion, and procoagulant activity, while persistent interferon signaling and immune complex engagement (via receptors such as FcγRIIA) amplify thromboinflammation. Platelets orchestrate leukocyte recruitment and endothelial activation through P-selectin/PSGL-1 (P-selectin glycoprotein ligand-1) interactions, CD40 ligand, interleukin-1β, and the release of extracellular vesicles carrying cytokines and RNAs. Platelet involvement manifests differently across immune-mediated inflammatory diseases. In systemic lupus erythematosus, they promote type I interferon priming, neutrophil extracellular trap formation, and endothelial dysfunction. In rheumatoid arthritis, they generate abundant synovial microparticles and systemic vascular changes. In psoriasis, they accumulate within skin lesions, enhance platelet-leukocyte aggregation and activate proatherogenic endothelial responses. These pathways promote, independent of traditional cardiovascular risk factors, atherothrombosis including myocardial infarction, stroke, and venous thromboembolism. Limited translational data suggest that hydroxychloroquine may attenuate platelet activation and improve endothelial function. P2Y12 inhibition may blunt interferon-linked platelet RNA signatures and leukocyte-platelet interactions. However, some therapies targeting inflammation, such as Janus kinase inhibitors, may promote thrombosis, the mechanisms of which are not fully known. Advances in multiomics, single-cell and spatial profiling, and in vivo models are delineating targets for intervention and enabling biomarker-driven risk stratification. Collectively, platelets function as central translators between autoimmunity and atherothrombosis. Defining and modulating platelet-immune crosstalk holds the potential to reduce cardiovascular risk in rheumatologic populations.
Platelets, classically defined by their hemostatic function, are increasingly recognized as immune effectors that shape chronic inflammation and vascular pathology in immune-mediated inflammatory diseases. In conditions such as systemic lupus erythematosus, rheumatoid arthritis, and psoriasis, immune activation skews platelet adhesion, secretion, and procoagulant activity, while persistent interferon signaling and immune complex engagement (via receptors such as FcγRIIA) amplify thromboinflammation. Platelets orchestrate leukocyte recruitment and endothelial activation through P-selectin/PSGL-1 (P-selectin glycoprotein ligand-1) interactions, CD40 ligand, interleukin-1β, and the release of extracellular vesicles carrying cytokines and RNAs. Platelet involvement manifests differently across immune-mediated inflammatory diseases. In systemic lupus erythematosus, they promote type I interferon priming, neutrophil extracellular trap formation, and endothelial dysfunction. In rheumatoid arthritis, they generate abundant synovial microparticles and systemic vascular changes. In psoriasis, they accumulate within skin lesions, enhance platelet-leukocyte aggregation and activate proatherogenic endothelial responses. These pathways promote, independent of traditional cardiovascular risk factors, atherothrombosis including myocardial infarction, stroke, and venous thromboembolism. Limited translational data suggest that hydroxychloroquine may attenuate platelet activation and improve endothelial function. P2Y12 inhibition may blunt interferon-linked platelet RNA signatures and leukocyte-platelet interactions. However, some therapies targeting inflammation, such as Janus kinase inhibitors, may promote thrombosis, the mechanisms of which are not fully known. Advances in multiomics, single-cell and spatial profiling, and in vivo models are delineating targets for intervention and enabling biomarker-driven risk stratification. Collectively, platelets function as central translators between autoimmunity and atherothrombosis. Defining and modulating platelet-immune crosstalk holds the potential to reduce cardiovascular risk in rheumatologic populations.
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