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Part 4: pharmacogenetic variability in anticancer pharmacodynamic drug effects
Maarten J Deenen1, Annemieke Cats, Jos H Beijnen
1Division of Clinical Pharmacology, Department of Medical Oncology, The Netherlands Cancer Institute, Amsterdam, The Netherlands.
Abstract:
Response to treatment with anticancer drugs is subject to wide interindividual variability. This variability is expressed not only as differences in severity and type of toxicity, but also as differences in effectiveness. Variability in the constitution of genes involved in the pharmacokinetic and pharmacodynamic pathways of anticancer drugs has been shown to possibly translate into differences in treatment outcome. The overall knowledge in the field of pharmacogenetics has tremendously increased over the last couple of years, and has thereby provided opportunities for patient-tailored anticancer therapy. In previous parts of this series, we described pharmacogenetic variability in anticancer phase I and phase II drug metabolism and drug transport. This fourth part of a four-part series of reviews is focused on pharmacodynamic variability and encompasses genetic variation in drug target genes such as those encoding thymidylate synthase, methylene tetrahydrofolate reductase, and ribonucleotide reductase. Furthermore, genetic variability in other pharmacodynamic candidate genes involved in response to anticancer drugs is discussed, including genes involved in DNA repair such as those encoding excision repair crosscomplementing group 1 and group 2, x-ray crosscomplementing group 1 and group 3, and breast cancer genes 1 and 2. Finally, somatic mutations in KRAS and the gene encoding epidermal growth factor receptor (EGFR) and implications for EGFR-targeted drugs are discussed. Potential implications and opportunities for patient and drug selection for genotype-driven anticancer therapy are outlined.
Insights
Genetic variations in pharmacodynamics significantly impact anticancer drug effectiveness and toxicity, enabling personalized cancer therapies. Understanding these genetic differences is key to optimizing patient treatment outcomes.
Area of Science:
- Pharmacogenetics
- Oncology
- Molecular Biology
Background:
- Interindividual variability in anticancer drug response is significant, affecting both toxicity and efficacy.
- Genetic factors in drug metabolism, transport, and targets contribute to treatment outcome differences.
- Advances in pharmacogenetics offer opportunities for tailoring anticancer therapies to individual patients.
Purpose of the Study:
- To review pharmacodynamic variability in anticancer drug response.
- To discuss genetic variations in drug target genes and DNA repair genes.
- To explore implications of somatic mutations in KRAS and EGFR for targeted therapies.
Main Methods:
- Review of existing literature on pharmacogenetics of anticancer drugs.
- Focus on genetic variations in thymidylate synthase, methylene tetrahydrofolate reductase, and ribonucleotide reductase.
- Discussion of genetic variability in DNA repair genes (e.g., ERCC1, XRCC1, BRCA1/2) and somatic mutations (KRAS, EGFR).
Main Results:
- Genetic variations in drug targets (e.g., thymidylate synthase) influence drug efficacy.
- Polymorphisms in DNA repair genes (e.g., ERCC1, XRCC1) affect response to DNA-damaging agents.
- Somatic mutations in KRAS and EGFR are critical for selecting appropriate targeted therapies.
Conclusions:
- Pharmacodynamic variability, driven by genetic factors, is crucial for anticancer drug response.
- Genotype-driven selection of patients and drugs can optimize anticancer therapy.
- Further research into pharmacogenetics will enhance personalized oncology strategies.
Related Concept Videos
Pharmacogenetic Phenotypes: Alterations in Pharmacokinetics, Drug Targets and Biologic Milieu
Pharmacogenetics of Drug Metabolism: Overview
Pharmacogenetics and Pharmacogenomics: Overview
Principles of Pharmacogenetics: Types of Genetic Variants
Pharmacogenomics: Identification of New Drug Targets
Drug toxicity: Idiosyncratic Reactions

