It's reticulated: the liver at the heart of atherosclerosis
Prabhakara R Nagareddy1, Sunil K Noothi1, Michelle C Flynn2,3
1Department of Nutrition SciencesUniversity of Alabama, Birmingham, UK.
Insights
Platelet hyperactivity in diabetes reduces aspirin effectiveness. Neutrophil S100A8/A9 drives immature platelet production via liver inflammation, increasing cardiovascular risk.
Area of Science:
- Cardiovascular Medicine
- Immunology
- Hematology
Background:
- Platelets are key in atherosclerosis and atherothrombotic events.
- Low-dose aspirin is standard antiplatelet therapy, but less effective in diabetes.
- Diabetes impairs antiplatelet therapy efficacy, raising future cardiovascular event risk.
Purpose of the Study:
- To explore molecular mechanisms of platelet hyperactivity in diabetes.
- To investigate the role of enhanced platelet turnover in atherothrombotic complications.
- To identify hepatic inflammation's role in reticulated platelet production.
Main Methods:
- Review of emerging evidence on platelet function and inflammation.
- Identification of neutrophil-derived S100A8/A9 as a driver of thrombopoiesis.
- Analysis of S100A8/A9 interaction with Kupffer cell receptors.
Main Results:
- Platelet hyperactivity in diabetes may stem from glycation-induced membrane changes.
- Enhanced production of immature reticulated platelets contributes to atherosclerosis.
- Neutrophil S100A8/A9 directly drives reticulated thrombopoiesis via hepatic Kupffer cells.
Conclusions:
- Hepatic inflammation promotes reticulated platelet production.
- Targeting hepatic inflammation could control platelet production.
- New strategies may improve antiplatelet therapy efficacy and reduce cardiovascular risk.
Abstract:
Platelets play a critical role in both the initiation and progression of atherosclerosis, and even more so in the ensuing atherothrombotic complications. Low-dose aspirin remains the mainstay of antiplatelet therapy in high-risk patients by reducing the risk of myocardial ischemia, stroke or death due to cardiovascular disease. However, antiplatelet therapies lose their efficacy in people with diabetes mellitus, increasing the risk of future atherothrombotic events. The molecular mechanisms that promote platelet hyperactivity remain unclear but could be due to glycation-induced conformational changes of platelet membranes resulting in impaired aspirin entry or less-efficient acetylation/compensatory increase in COX-2 expression in newborn platelets. Emerging evidence from our laboratory and elsewhere suggest that enhanced platelet turnover (thrombopoiesis), particularly the production of immature reticulated platelets from the bone marrow, could contribute to atherosclerotic complications. We have identified a major role for neutrophil-derived S100A8/A9, a damage-associated molecular pattern, in driving reticulated thrombopoiesis by directly interacting with its receptors on Kupffer cells in the liver. In this review, we discuss the role of hepatic inflammation in driving reticulated platelet production and suggest potential targets to control their production, improve efficacy of current antiplatelet therapies and reduce the risk of atherothrombotic complications.
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