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Reversing-or Rewiring-Lineage Plasticity? Lessons from EZH2 Loss in Prostate Cancer
Phillip Thienger1, Dilara Akhoundova1,2, Mark A Rubin1,3
1Department for Biomedical Research, University of Bern, Bern, Switzerland.
Abstract:
Enhancer of zeste homolog 2 (EZH2) inhibitors have been proposed to counteract lineage plasticity (LP) in prostate cancer and thereby resensitize tumors to androgen receptor (AR) inhibition. In this issue of Cancer Research, Jacobi and colleagues provide new mechanistic insights into EZH2 biology across prostate cancer progression using a genetically engineered mouse model that recapitulates the transition toward a neuroendocrine (NE) phenotype. Unexpectedly, genetic deletion of Ezh2 did not reverse LP but instead promoted the diversification of transcription factor (TF) programs driving NE differentiation. In particular, the loss of EZH2 activated members of the KLF TF family, which contributed to this transcriptional diversification. Moreover, EZH2 deletion altered the chromatin-binding landscape of AR, redirecting it toward KLF-associated genomic sites. Collectively, these results refine our understanding of EZH2 function in prostate cancer: Rather than simply reversing LP, EZH2 loss rewires transcriptional networks and reshapes the AR cistrome. These findings are timely given the growing number of clinical trials testing EZH2 inhibitors in metastatic prostate cancer and highlight the need to define when and how to deploy EZH2 inhibition to exploit its effects on tumor lineage dynamics. See related article by Jacobi et al., p. 889.
Insights
Loss of EZH2 in prostate cancer did not reverse lineage plasticity but promoted neuroendocrine differentiation by activating KLF transcription factors and altering androgen receptor binding. This rewires tumor transcriptional networks, impacting treatment strategies.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Enhancer of zeste homolog 2 (EZH2) inhibition is explored to reverse prostate cancer lineage plasticity (LP) and resensitize tumors to androgen receptor (AR) inhibition.
- Prostate cancer progression involves a transition toward a neuroendocrine (NE) phenotype, a process influenced by EZH2.
Purpose of the Study:
- To investigate the mechanistic role of EZH2 in prostate cancer progression and the transition to a neuroendocrine phenotype.
- To elucidate how EZH2 loss impacts lineage plasticity and transcription factor programs.
Main Methods:
- Utilized a genetically engineered mouse model recapitulating prostate cancer progression to a NE phenotype.
- Performed genetic deletion of Ezh2 to assess its effects on LP and NE differentiation.
- Analyzed transcription factor (TF) activation, chromatin-binding landscape of AR, and genomic site association.
Main Results:
- Genetic deletion of Ezh2 did not reverse LP but unexpectedly promoted NE differentiation.
- Loss of EZH2 activated KLF transcription factor family members, contributing to transcriptional diversification.
- EZH2 deletion altered AR chromatin binding, redirecting it to KLF-associated genomic sites, thus reshaping the AR cistrome.
Conclusions:
- EZH2 loss in prostate cancer does not simply reverse LP but rather rewires transcriptional networks and alters the AR cistrome.
- These findings refine the understanding of EZH2 function and have implications for the clinical deployment of EZH2 inhibitors in metastatic prostate cancer.
- Further research is needed to define optimal strategies for using EZH2 inhibition to modulate tumor lineage dynamics.
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