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Updated: Aug 11, 2026

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
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.
Abstract:
Aberrant methylation of CpG islands located at or near gene promoters is associated with inactivation of gene expression during tumour development. It is increasingly recognised that such epimutations may occur at a much higher frequency than gene mutation and therefore have a greater impact on selection of subpopulations of cells during tumour progression or acquisition of resistance to anticancer drugs. Although laboratory-based models of acquired resistance to anticancer agents tend to focus on specific genes or biochemical pathways, such 'one gene:one outcome' models may be an oversimplification of acquired resistance to treatment of cancer patients. Instead, clinical drug resistance may be due to changes in expression of a large number of genes that have a cumulative impact on chemosensitivity. Aberrant CpG island methylation of multiple genes occurring in a nonrandom manner during tumour development and during the acquisition of drug resistance provides a mechanism whereby expression of multiple genes could be affected simultaneously resulting in polygenic clinical drug resistance. If simultaneous epigenetic regulation of multiple genes is indeed a major driving force behind acquired resistance of patients' tumour to anticancer agents, this has important implications for biomarker studies of clinical outcome following chemotherapy and for clinical approaches designed to circumvent or modulate drug resistance.
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.
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