Epigenetics as a mechanism driving polygenic clinical drug resistance

R M Glasspool1, J M Teodoridis, R Brown

  • 1Centre for Oncology and Applied Pharmacology, Glasgow University, CRUK Beatson Laboratories, Garscube Estate, Glasgow G61 1BD, UK.

British Journal of Cancer
|February 24, 2006
PubMed

Insights

Aberrant CpG island methylation, a type of epimutation, can inactivate gene expression more frequently than gene mutations. This epigenetic regulation of multiple genes may drive clinical drug resistance in cancer patients.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Epigenetics

Background:

  • Aberrant methylation of CpG islands near gene promoters inactivates gene expression during tumor development.
  • Epimutations occur more frequently than gene mutations, impacting tumor progression and drug resistance.
  • Current models of drug resistance often oversimplify by focusing on single genes or pathways.

Purpose of the Study:

  • To explore the role of aberrant CpG island methylation in polygenic clinical drug resistance.
  • To investigate if simultaneous epigenetic regulation of multiple genes drives acquired resistance to anticancer agents.

Main Methods:

  • The study reviews existing literature and theoretical models on epigenetic regulation and drug resistance.
  • Analysis focuses on the impact of nonrandom, simultaneous methylation across multiple genes.

Main Results:

  • Aberrant CpG island methylation of multiple genes can simultaneously affect gene expression.
  • This polygenic epigenetic regulation provides a mechanism for acquired clinical drug resistance.
  • Such changes may occur more frequently and have a greater impact than single-gene mutations.

Conclusions:

  • Simultaneous epigenetic regulation of multiple genes is a potential major driver of acquired anticancer drug resistance.
  • This finding has significant implications for developing biomarkers for clinical outcomes.
  • Understanding these mechanisms could lead to new strategies to circumvent or modulate drug resistance.

Related Concept Videos

Pharmacogenetic Phenotypes: Alterations in Pharmacokinetics, Drug Targets and Biologic Milieu01:29

Pharmacogenetic Phenotypes: Alterations in Pharmacokinetics, Drug Targets and Biologic Milieu

Genetic variations significantly influence drug response through pharmacokinetics, receptor interactions, and biologic milieu modifications. Pharmacokinetic alterations impact drug metabolism and clearance, affecting efficacy and toxicity. Variants in drug-metabolizing enzymes, such as CYP2C9 and CYP2C19, alter drug activation and elimination. For example, CYP2C9 loss-of-function variants require lower warfarin doses to prevent excessive bleeding, while CYP2C19 variants reduce clopidogrel...
Pharmacogenomics: Identification of New Drug Targets01:29

Pharmacogenomics: Identification of New Drug Targets

Advances in genomics have profoundly influenced drug discovery by increasing both the speed and accuracy of pharmaceutical development. Pharmacogenomics, which examines how genetic variation influences drug response, facilitates the identification of novel therapeutic targets and enables patient stratification for personalized treatment. These strategies contribute to improved drug efficacy, minimized adverse effects, and more efficient clinical trial design.Mapping genetic differences...
Pharmacogenetics of Drug Metabolism: Overview01:27

Pharmacogenetics of Drug Metabolism: Overview

Genetic polymorphism in drug metabolism is crucial to the inter-individual variability observed in drug responses. Drug metabolism primarily involves the chemical modification of drugs and other xenobiotics to enhance their elimination by increasing their polarity. Two main classes of enzymes mediate this biotransformation process: Phase I enzymes, primarily cytochrome P450s, catalyze oxidation and reduction reactions, while other enzymes, such as esterases, mediate hydrolysis, and Phase II...
Pharmacogenetics and Pharmacogenomics: Overview01:29

Pharmacogenetics and Pharmacogenomics: Overview

Pharmacogenetics and pharmacogenomics examine how genetic factors influence an individual's response to drugs. While pharmacogenetics focuses on the impact of specific genetic variants on drug effects, pharmacogenomics takes a broader approach, studying how genetic variation across populations contributes to differences in drug responses. These fields aim to explain why individuals may experience varying levels of efficacy or adverse reactions to the same medication.Variability in drug...
Principles of Pharmacogenetics: Types of Genetic Variants01:27

Principles of Pharmacogenetics: Types of Genetic Variants

The human genome is over 99.9% identical between individuals, yet genetic differences exist at millions of bases. The human genome contains approximately 3 million variant positions per individual, many of which are heterozygous, contributing to genetic diversity and individual traits. Genetic variations include single-nucleotide polymorphisms (SNPs), insertions, deletions, and copy number variations (CNVs).SNPs, the most common variation, involve single-base changes in DNA. These can be...
Pharmacogenetics of Drug Targets: β₂-Adrenergic Receptors, Apo E, Thymidylate Synthase01:11

Pharmacogenetics of Drug Targets: β₂-Adrenergic Receptors, Apo E, Thymidylate Synthase

Genetic polymorphisms in drug targets have emerged as critical determinants of interindividual variability in drug response and toxicity. Pharmacogenomic investigations increasingly focus on identifying these variations to personalize and optimize therapeutic interventions. A drug target may be a receptor, enzyme, or signaling protein involved in pharmacologic responses or disease-related pathways. While early pharmacogenetic studies focused primarily on drug metabolism, current research...