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Updated: May 23, 2026

Sequencing Small Non-coding RNA from Formalin-fixed Tissues and Serum-derived Exosomes from Castration-resistant Prostate Cancer Patients
Published on: November 19, 2019
Interplay of the 3D genome and epigenome in androgen-driven prostate cancer
Elyssa M Campbell1,2, Dayna Challis3, Susan J Clark1,2
1Cancer Ecosystems Program, Garvan Institute of Medical Research, Sydney, NSW, Australia.
Abstract:
Understanding of the therapeutic landscape for androgen-driven prostate cancer has undergone significant evolution, yet treatment resistance remains an ongoing challenge. The androgen receptor (AR) plays a central role in androgen-dependent prostate tumor growth, and therapeutic agents targeting AR represent the main treatment modality for prostate cancer. AR transcriptional activity is tightly regulated by coregulatory transcription factors and their DNA binding and activity. However, the precise interactions between AR and three-dimensional (3D) chromatin structure and its dynamic remodeling represent a critical yet underexploited therapeutic frontier. Here, we present a perspective on how the spatial architecture of the epigenome, including 3D chromatin structure and dynamics, orchestrates dysregulation of transcription factor networks that help to drive disease progression in androgen-driven prostate cancer. We argue that successful therapeutic intervention requires moving beyond linear epigenetic marks toward a three-dimensional understanding of the epigenetic landscape. Such a shift is essential to capture the complex enhancer-promoter communications and chromatin state transitions that define the disease. Drawing on recent advances in prostate cancer biology and technological developments, we propose a unique integrated framework centered on patient-specific 3D epigenomic vulnerabilities for next-generation epigenetic therapies designed to disrupt oncogenic transcriptional programs by specifically targeting chromatin topology.
Insights
Treatment resistance in prostate cancer is a major hurdle. Targeting the androgen receptor (AR) is key, but understanding 3D chromatin structure is crucial for new therapies against AR-driven tumors.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Androgen receptor (AR) signaling drives prostate cancer growth.
- Treatment resistance to AR-targeting therapies remains a significant clinical challenge.
- Current understanding of AR regulation overlooks the role of three-dimensional (3D) chromatin structure.
Purpose of the Study:
- To highlight the critical role of 3D epigenomic architecture in driving prostate cancer progression.
- To propose a shift from linear to 3D epigenetic analysis for therapeutic development.
- To introduce a framework for next-generation epigenetic therapies targeting chromatin topology.
Main Methods:
- Review of recent advances in prostate cancer biology.
- Analysis of technological developments in epigenomic profiling.
- Integration of patient-specific 3D epigenomic data.
Main Results:
- Dysregulation of transcription factor networks is orchestrated by 3D epigenome structure.
- Complex enhancer-promoter communications and chromatin state transitions are vital in prostate cancer.
- 3D chromatin topology influences AR transcriptional activity and disease progression.
Conclusions:
- A 3D understanding of the epigenome is essential for overcoming treatment resistance in prostate cancer.
- Targeting chromatin topology offers a novel therapeutic strategy.
- Patient-specific 3D epigenomic vulnerabilities can guide the development of next-generation epigenetic therapies.
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