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Published on: January 18, 2017
Mechanisms of aspirin resistance
Christopher N Floyd1, Albert Ferro1
1Department of Clinical Pharmacology, Cardiovascular Division, King's College London, London, UK.
Insights
Aspirin resistance, where patients do not respond to aspirin therapy, is a significant issue in cardiovascular disease prevention. Factors like poor adherence and high platelet turnover contribute to this phenomenon, necessitating further research.
Area of Science:
- Cardiovascular Medicine
- Pharmacology
- Biochemistry
Background:
- Aspirin is crucial for secondary prevention of cardiovascular disease by inhibiting cyclooxygenase-1 (COX-1).
- Despite aspirin use, many patients experience atherothrombotic events, termed 'aspirin treatment failure'.
- Aspirin resistance affects approximately 10% of patients, defined by various laboratory measures.
Purpose of the Study:
- To systematically review the multifactorial causes of aspirin resistance.
- To explore mechanisms from drug prescription to platelet level interactions.
- To discuss recent findings and ongoing research in aspirin resistance.
Main Methods:
- Literature review of studies investigating aspirin resistance.
- Analysis of factors influencing aspirin efficacy.
- Discussion of laboratory and molecular mechanisms.
Main Results:
- Poor medication adherence is a major contributor to apparent aspirin resistance.
- High platelet turnover, driven by inflammation (e.g., atherosclerosis), reduces aspirin efficacy.
- Platelet glycoprotein IIIa and anion efflux pumps are identified as potential factors in aspirin resistance.
Conclusions:
- Aspirin resistance is a complex issue with multiple contributing factors.
- Understanding these factors is key to improving cardiovascular disease prevention strategies.
- Further research is needed to elucidate the precise roles of identified mechanisms and biomarkers.
Abstract:
Aspirin is integral to the secondary prevention of cardiovascular disease and acts to impair the development of platelet-mediated atherothromboembolic events by irreversible inhibition of platelet cyclooxygenase-1 (COX-1). Inhibition of this enzyme prevents the synthesis of the potent pro-aggregatory prostanoid thromboxane A2. A large number of patients continue to experience atherothromboembolic events despite aspirin therapy, so-called 'aspirin treatment failure', and this is multifactorial in aetiology. Approximately 10% however do not respond appropriately to aspirin in a phenomenon known as 'aspirin resistance', which is defined by various laboratory techniques. In this review we discuss the reasons for aspirin resistance in a systematic manner, starting from prescription of the drug and ending at the level of the platelet. Poor medication adherence has been shown to be a cause of apparent aspirin resistance, and may in fact be the largest contributory factor. Also important is high platelet turnover due to underlying inflammatory processes, such as atherosclerosis and its complications, leading to faster regeneration of platelets, and hence of COX-1, at a rate that diminishes the efficacy of once daily dosing. Recent developments include the identification of platelet glycoprotein IIIa as a potential biomarker (as well as possible underlying mechanism) for aspirin resistance and the discovery of an anion efflux pump that expels intracellular aspirin from platelets. The absolute as well as relative contributions of such factors to the phenomenon of aspirin resistance are the subject of continuing research.
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