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Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Epigenetic modifications in cancer drug resistance: molecular mechanisms and therapeutic interventions
Jingyi Yang1, Minpu Zhang2, Yuting Zhong3
1College of First Clinical Medicine, Shandong University of Traditional Chinese Medicine, Jinan, 250014, China.
Abstract:
Therapeutic resistance remains a major cause of treatment failure and disease recurrence across cancer types, considerably limiting the long-term efficacy of chemotherapies, targeted therapies, and immunotherapies. Growing evidence indicates that resistance cannot be fully explained by static genetic alterations but rather arises from dynamic and reversible adaptive processes. Epigenetic regulation governs transcriptional plasticity, cellular state transitions, and tumor heterogeneity under therapeutic stress. Alterations in DNA methylation, histone modifications, chromatin accessibility, and non-coding RNA networks enable cancer cells to silence tumor suppressor programs, activate compensatory survival pathways, acquire stem cell-like drug-tolerant persister states, and remodel the tumor immune microenvironment. These mechanisms often act in a coordinated manner to form a dynamic regulatory system that supports adaptive resistance. However, current studies have frequently focused on individual epigenetic regulators and have lacked an integrated framework to explain how epigenetic plasticity collectively drives therapeutic resistance. In this review, we deconstruct cancer therapy resistance using the conceptual framework of the "epigenetic landscape." We summarize the molecular functions and crosstalk among the major epigenetic layers and describe how this integrated network sustains key resistance-associated phenotypes. We also discuss emerging therapeutic strategies that target epigenetic plasticity, including epigenetic drugs, targeted protein degradation, epigenetic editing, and rational combination therapies. Overall, this review provides a systematic framework for understanding epigenetically mediated therapy resistance and highlights epigenetic plasticity as a therapeutic vulnerability for developing durable cancer treatments.
Insights
Cancer therapy resistance is driven by dynamic epigenetic changes, not just genetics. Targeting this epigenetic plasticity offers a new vulnerability for developing durable cancer treatments.
Area of Science:
- Oncology
- Epigenetics
- Cancer Biology
Background:
- Therapeutic resistance is a major cause of cancer treatment failure and recurrence.
- Resistance mechanisms involve dynamic, reversible adaptive processes beyond static genetic alterations.
- Epigenetic regulation plays a crucial role in cancer cell adaptation and heterogeneity under therapy.
Purpose of the Study:
- To provide an integrated framework for understanding how epigenetic plasticity drives cancer therapy resistance.
- To summarize the molecular functions and crosstalk of major epigenetic layers in resistance.
- To discuss emerging therapeutic strategies targeting epigenetic plasticity.
Main Methods:
- Review of current literature on epigenetic regulation in cancer therapy resistance.
- Deconstruction of cancer therapy resistance using the "epigenetic landscape" conceptual framework.
- Analysis of molecular functions and interactions among epigenetic layers.
Main Results:
- Epigenetic alterations (DNA methylation, histone modifications, chromatin accessibility, non-coding RNAs) enable adaptive resistance phenotypes.
- These epigenetic mechanisms form a coordinated network sustaining resistance, including stem cell-like persister states and immune microenvironment remodeling.
- Current research often lacks an integrated view of how these epigenetic changes collectively drive resistance.
Conclusions:
- Epigenetic plasticity is a central mechanism underlying cancer therapy resistance.
- Targeting epigenetic plasticity, through epigenetic drugs, targeted protein degradation, or combination therapies, represents a promising vulnerability for developing durable cancer treatments.
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