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Sequencing Small Non-coding RNA from Formalin-fixed Tissues and Serum-derived Exosomes from Castration-resistant Prostate Cancer Patients
Published on: November 19, 2019
NSD2 maintains lineage plasticity and castration-resistance in neuroendocrine prostate cancer
Abstract:
The clinical use of potent androgen receptor (AR) inhibitors has promoted the emergence of novel subtypes of metastatic castration-resistant prostate cancer (mCRPC), including neuroendocrine prostate cancer (CRPC-NE), which is highly aggressive and lethal 1 . These mCRPC subtypes display increased lineage plasticity and often lack AR expression 2-5 . Here we show that neuroendocrine differentiation and castration-resistance in CRPC-NE are maintained by the activity of Nuclear Receptor Binding SET Domain Protein 2 (NSD2) 6 , which catalyzes histone H3 lysine 36 dimethylation (H3K36me2). We find that organoid lines established from genetically-engineered mice 7 recapitulate key features of human CRPC-NE, and can display transdifferentiation to neuroendocrine states in culture. CRPC-NE organoids express elevated levels of NSD2 and H3K36me2 marks, but relatively low levels of H3K27me3, consistent with antagonism of EZH2 activity by H3K36me2. Human CRPC-NE but not primary NEPC tumors expresses high levels of NSD2, consistent with a key role for NSD2 in lineage plasticity, and high NSD2 expression in mCRPC correlates with poor survival outcomes. Notably, CRISPR/Cas9 targeting of NSD2 or expression of a dominant-negative oncohistone H3.3K36M mutant results in loss of neuroendocrine phenotypes and restores responsiveness to the AR inhibitor enzalutamide in mouse and human CRPC-NE organoids and grafts. Our findings indicate that NSD2 inhibition can reverse lineage plasticity and castration-resistance, and provide a potential new therapeutic target for CRPC-NE.
Insights
Nuclear Receptor Binding SET Domain Protein 2 (NSD2) drives aggressive neuroendocrine prostate cancer (CRPC-NE) by maintaining castration-resistance and lineage plasticity. Inhibiting NSD2 can reverse these traits, offering a new therapeutic strategy for CRPC-NE.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Metastatic castration-resistant prostate cancer (mCRPC) can develop aggressive neuroendocrine subtypes (CRPC-NE) due to lineage plasticity.
- These CRPC-NE subtypes often lack androgen receptor (AR) expression and are associated with poor prognosis.
Approach:
- Utilized genetically-engineered mouse models and organoid lines to study CRPC-NE.
- Investigated the role of Nuclear Receptor Binding SET Domain Protein 2 (NSD2) and its catalytic activity (H3K36me2) in maintaining CRPC-NE phenotypes.
- Employed CRISPR/Cas9 and oncohistone mutants to target NSD2 activity.
Key Points:
- NSD2 and H3K36me2 marks are elevated in CRPC-NE, correlating with lineage plasticity and poor survival in mCRPC.
- NSD2 activity antagonizes EZH2 activity, indicated by low H3K27me3 levels.
- Targeting NSD2 in CRPC-NE models reversed neuroendocrine differentiation and restored sensitivity to AR inhibitors like enzalutamide.
Conclusions:
- NSD2 is a key driver of castration-resistance and neuroendocrine differentiation in prostate cancer.
- Inhibition of NSD2 represents a promising therapeutic strategy to overcome lineage plasticity and resistance to AR-targeted therapies in CRPC-NE.

