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Author Spotlight: Reprogramming Cancer Cells to iPSCs to Study Disease Progression and Treatment Targets
Published on: February 2, 2024
Epigenetic reprogramming as the nexus of cancer stemness and therapy resistance: implications for biomarker discovery
Chu Xin Ng1, Shin Yuh Lee1, Xin Yi Yap1
1School of Biosciences, Faculty of Health and Medical Sciences, Taylor's University, No.1, Jalan Taylors, 47500, Subang Jaya, Selangor, Malaysia.
Abstract:
Therapeutic failure in cancer often arises from the ability of tumor cells to adapt to external stressors such as drug exposure, metabolic and oxidative stress, and immune surveillance within the tumor microenvironment (TME). This adaptive capacity is a significant factor contributing to poor clinical outcomes and the lethality associated with many aggressive cancer types. During tumor progression, a subpopulation of cells may acquire stem-like characteristics, leading to the development of cancer stem cells (CSCs), which play a pivotal role in resistance and disease recurrence. A key driver of this process is epigenetic reprogramming, which alters histone modifications and chromatin architecture in response to environmental stimuli. These modifications activate genes associated with stemness by creating transcriptionally permissive chromatin regions, while simultaneously silencing genes involved in differentiation, thereby maintaining the tumor cells' undifferentiated state. This cellular plasticity enables cancer cells to undergo transdifferentiation or dedifferentiation, enhancing their capacity for survival and adaptation. Importantly, distinct transcriptional states are often regulated by specific epigenetic signatures, some of which are valuable for tumor subtype classification, prognosis assessment, and treatment response prediction. Furthermore, certain epigenetic biomarkers show considerable promise for detecting tumor recurrence and monitoring minimal residual disease with high sensitivity. In this review, we examine how epigenetic reprogramming influences chromatin plasticity to promote stemness and therapeutic resistance. Additionally, we discuss ongoing translational research aimed at leveraging these mechanisms to advance precision oncology, with the ultimate goal of improving diagnostic accuracy and therapeutic efficacy.
Insights
Cancer cells adapt to stressors via epigenetic reprogramming, promoting stemness and therapeutic resistance. This review explores how targeting these epigenetic mechanisms can improve cancer diagnostics and treatments.
Area of Science:
- Oncology
- Epigenetics
- Cancer Biology
Background:
- Cancer therapeutic failure is driven by tumor cell adaptation to stressors like drugs and immune surveillance.
- Cancer stem cells (CSCs) emerge during tumor progression, contributing to resistance and recurrence.
- Epigenetic reprogramming is a key mechanism driving CSC development and therapeutic resistance.
Purpose of the Study:
- To review how epigenetic reprogramming influences chromatin plasticity, promoting cancer stemness and therapeutic resistance.
- To discuss translational research leveraging epigenetic mechanisms for precision oncology.
- To highlight the potential of epigenetic biomarkers for improved cancer diagnostics and treatment efficacy.
Main Methods:
- Review of scientific literature on epigenetics, cancer stem cells, and therapeutic resistance.
- Analysis of the role of histone modifications and chromatin architecture in regulating gene expression.
- Examination of epigenetic signatures for tumor classification and prognosis.
Main Results:
- Epigenetic reprogramming alters chromatin to promote stemness and silence differentiation genes, enhancing cancer cell plasticity.
- Specific epigenetic signatures correlate with tumor subtypes, prognosis, and treatment response.
- Epigenetic biomarkers show promise for early detection of tumor recurrence and monitoring minimal residual disease.
Conclusions:
- Epigenetic reprogramming is a critical driver of cancer stemness and therapeutic resistance.
- Targeting epigenetic mechanisms offers a promising avenue for advancing precision oncology.
- Further research into epigenetic biomarkers can significantly improve cancer diagnosis, prognosis, and treatment outcomes.
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