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Genetic Signatures in Ischemic Stroke: Focus on Aspirin Resistance
Kanika Vasudeva1, Pratibha Chaurasia1, Sulena Singh2
1Centre for Human Genetics and Molecular Medicine, Central University of Punjab Bathinda, Punjab, India.
Insights
Genetic variations influence how patients respond to aspirin, a key stroke prevention drug. Understanding these genetic factors is crucial for managing aspirin resistance and adverse drug reactions in stroke patients.
Area of Science:
- Pharmacogenomics
- Cardiovascular Medicine
- Genetics
Background:
- Stroke is a leading cause of death with a known genetic component influencing susceptibility and outcomes.
- Aspirin is a standard antiplatelet therapy for stroke prevention, inhibiting cyclooxygenase (COX) to reduce thromboxane A2 (TXA2) production.
- A significant percentage of patients exhibit aspirin resistance, leading to secondary vascular events despite treatment.
Purpose of the Study:
- To review studies on genetic variations contributing to aspirin resistance.
- To explore the role of genetic factors in adverse drug reactions to aspirin.
- To discuss the impact of high-throughput genomic technologies on understanding these variations.
Main Methods:
- Literature review of studies investigating genetic variations and aspirin response.
- Analysis of findings from genome-wide association studies (GWAS) and other high-throughput genomic technologies.
- Examination of genes involved in the absorption, distribution, metabolism, excretion (ADME), and pharmacodynamics of aspirin.
Main Results:
- Genetic variants in over a dozen genes are implicated in aspirin resistance.
- These genetic variations affect aspirin's efficacy and can lead to adverse drug reactions.
- High-throughput genomic data provides insights into the genetic basis of aspirin resistance and associated risks.
Conclusions:
- Genetic factors play a significant role in aspirin resistance and adverse drug reactions in stroke patients.
- Further research into pharmacogenomics can optimize antiplatelet therapy and improve patient outcomes.
- Genomic technologies are essential tools for personalized medicine approaches in stroke prevention.
Background And Objective:
Stroke is one of the leading causes of death. There has been compelling evidence that stroke has a genetic component. Genetic variants not only influence susceptibility to stroke but have also been found to alter the response to pharmacological agents and influence the clinical outcome of the disease. Stroke patients are treated with antiplatelet drugs like aspirin and clopidogrel to prevent a secondary stroke. In spite of the fact that many new antiplatelet drugs have been developed, aspirin is still considered as a golden standard for the antiplatelet therapy. Aspirin achieves its action by inhibiting platelet cyclooxygenase (COX) system involved in the formation of thromboxane A2 (TXA2). TXA2 triggers reactions leading to platelet activation and aggregation. This Non-steroidal anti-inflammatory drug (NSAID) acts by inhibiting this mediator. Despite the demonstrated benefits of aspirin, many patients develop secondary stroke or other vascular events, an observation that has led to the concept of aspirin resistance. Studies have demonstrated that adequate antiplatelet effects are not achieved in 5-45% patients suggesting that many individuals are aspirin resistant. Aspirin resistance is multifactorial in origin. A genetic component has also been suggested, and variants in more than a dozen genes involved in absorption, distribution, metabolism, excretion (ADME) and pharmacodynamics of aspirin have been shown to be responsible for aspirin resistance. In addition, the patients on aspirin treatment also face adverse drug reactions on account of genetic variation.
Conclusion:
The present review has been compiled with an aim to revisit all the studies related to genetic variation contributing to aspirin resistance as well as adverse drug reactions. The output of high throughput genomic technology like genome wide association studies and others has also been discussed.
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