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Pharmacogenomics in Solid Tumors: A Comprehensive Review of Genetic Variability and Its Clinical Implications
Rodrigo Sánchez-Bayona1, Camila Catalán2, Maria Angeles Cobos1
1Medical Oncology, Hospital Universitario 12 de Octubre, 28041 Madrid, Spain.
Abstract:
Pharmacogenomics, the study of how genetic variations influence drug response, has become integral to cancer treatment as personalized medicine evolves. This review aims to explore key pharmacogenomic biomarkers relevant to cancer therapy and their clinical implications, providing an updated and comprehensive perspective on how genetic variations impact drug metabolism, efficacy, and toxicity in oncology. Genetic heterogeneity among oncology patients significantly impacts drug efficacy and toxicity, emphasizing the importance of incorporating pharmacogenomic testing into clinical practice. Genes such as CYP2D6, DPYD, UGT1A1, TPMT, EGFR, KRAS, and BRCA1/2 play pivotal roles in influencing the metabolism, efficacy, and adverse effects of various chemotherapeutic agents, targeted therapies, and immunotherapies. For example, CYP2D6 polymorphisms affect tamoxifen metabolism in breast cancer, while DPYD variants can result in severe toxicities in patients receiving fluoropyrimidines. Mutations in EGFR and KRAS have significant implications for the use of targeted therapies in lung and colorectal cancers, respectively. Additionally, BRCA1/2 mutations predict the efficacy of PARP inhibitors in breast and ovarian cancer. Ongoing research in polygenic risk scores, liquid biopsies, gene-drug interaction networks, and immunogenomics promises to further refine pharmacogenomic applications, improving patient outcomes and reducing treatment-related adverse events. This review also discusses the challenges and future directions in pharmacogenomics, including the integration of computational models and CRISPR-based gene editing to better understand gene-drug interactions and resistance mechanisms. The clinical implementation of pharmacogenomics has the potential to optimize cancer treatment by tailoring therapies to an individual's genetic profile, ultimately enhancing therapeutic efficacy and minimizing toxicity.
Insights
Pharmacogenomics uses genetic information to personalize cancer treatment, improving drug efficacy and reducing toxicity. Key genes like CYP2D6 and EGFR guide therapy selection for better patient outcomes.
Area of Science:
- Oncology
- Pharmacogenomics
- Genetics
Background:
- Personalized medicine in cancer care is evolving.
- Genetic variations significantly impact drug response in oncology patients.
- Pharmacogenomic testing is crucial for optimizing cancer therapy.
Purpose of the Study:
- To review key pharmacogenomic biomarkers in cancer therapy.
- To explore the clinical implications of genetic variations on drug metabolism, efficacy, and toxicity.
- To provide a comprehensive perspective on pharmacogenomics in oncology.
Main Methods:
- Literature review of pharmacogenomic biomarkers.
- Analysis of gene-drug interactions in various cancers.
- Discussion of ongoing research and future directions.
Main Results:
- Identified key genes (e.g., CYP2D6, DPYD, EGFR, KRAS, BRCA1/2) influencing drug response.
- Highlighted specific examples of gene-drug interactions in breast, lung, and colorectal cancers.
- Emphasized the role of genetic heterogeneity in treatment outcomes.
Conclusions:
- Pharmacogenomics optimizes cancer treatment by tailoring therapies to individual genetic profiles.
- Clinical implementation enhances efficacy and minimizes toxicity.
- Future research in polygenic scores and immunogenomics will further refine applications.
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