LSD1 Inhibition Disrupts Super-Enhancer-Driven Oncogenic Transcriptional Programs in Castration-Resistant Prostate
Muqing Li1,2, Mingyu Liu1,2, Wanting Han1,2,3
1Center for Personalized Cancer Therapy, University of Massachusetts Boston, Boston, Massachusetts.
Abstract:
The lysine demethylase LSD1 (also called KDM1A) plays important roles in promoting multiple malignancies including both hematologic cancers and solid tumors. LSD1 targets histone and nonhistone proteins and can function as a transcriptional corepressor or coactivator. LSD1 has been reported to act as a coactivator of androgen receptor (AR) in prostate cancer and to regulate the AR cistrome via demethylation of its pioneer factor FOXA1. A deeper understanding of the key oncogenic programs targeted by LSD1 could help stratify prostate cancer patients for treatment with LSD1 inhibitors, which are currently under clinical investigation. In this study, we performed transcriptomic profiling in an array of castration-resistant prostate cancer (CRPC) xenograft models that are sensitive to LSD1 inhibitor treatment. Impaired tumor growth by LSD1 inhibition was attributed to significantly decreased MYC signaling, and MYC was found to be a consistent target of LSD1. Moreover, LSD1 formed a network with BRD4 and FOXA1 and was enriched at super-enhancer regions exhibiting liquid-liquid phase separation. Combining LSD1 inhibitors with BET inhibitors exhibited strong synergy in disrupting the activities of multiple drivers in CRPC, thereby inducing significant growth repression of tumors. Importantly, the combination treatment showed superior effects than either inhibitor alone in disrupting a subset of newly identified CRPC-specific super-enhancers. These results provide mechanistic and therapeutic insights for cotargeting two key epigenetic factors and could be rapidly translated in the clinic for CRPC patients.
Significance:
LSD1 drives prostate cancer progression by activating super-enhancer-mediated oncogenic programs, which can be targeted with the combination of LSD1 and BRD4 inhibitors to suppress the growth of CRPC.
Insights
Lysine demethylase LSD1 (also called KDM1A) drives prostate cancer by activating MYC signaling. Combining LSD1 and BRD4 inhibitors synergistically suppresses tumor growth by targeting key epigenetic drivers.
Area of Science:
- Epigenetics
- Cancer Biology
- Molecular Oncology
Background:
- Lysine demethylase LSD1 (KDM1A) is implicated in various cancers, including prostate cancer.
- LSD1 regulates gene transcription as a coactivator or corepressor and targets both histone and nonhistone proteins.
- In prostate cancer, LSD1 acts as a coactivator for the androgen receptor (AR) and influences its regulatory network via FOXA1 demethylation.
Purpose of the Study:
- To investigate the oncogenic programs driven by LSD1 in castration-resistant prostate cancer (CRPC).
- To evaluate the therapeutic potential of LSD1 inhibitors, alone and in combination with BET inhibitors, for CRPC treatment.
Main Methods:
- Transcriptomic profiling of CRPC xenograft models treated with LSD1 inhibitors.
- Analysis of LSD1, BRD4, and FOXA1 interactions and enrichment at super-enhancers.
- Assessment of synergistic effects of combined LSD1 and BET inhibitor treatment on tumor growth and super-enhancer activity.
Main Results:
- LSD1 inhibition significantly reduced MYC signaling, identifying MYC as a key target.
- LSD1 was found to form a network with BRD4 and FOXA1, localizing to super-enhancers.
- Combination therapy with LSD1 and BET inhibitors demonstrated strong synergy, repressing tumor growth more effectively than single agents.
- The combination treatment uniquely disrupted novel CRPC-specific super-enhancers.
Conclusions:
- LSD1 promotes CRPC progression through super-enhancer-driven oncogenic programs.
- Targeting LSD1, particularly in combination with BRD4 inhibitors, offers a promising therapeutic strategy for CRPC.
- These findings provide mechanistic insights and support the clinical translation of combined epigenetic therapy for CRPC.
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