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The Histone Methyltransferase KMT2D Is a Critical Mediator of Lineage Plasticity and Therapeutic Response in
Srushti Kittane1,2, Erik Ladewig3, Taibo Li4,5
1Department of Biochemistry and Molecular Biology, Johns Hopkins School of Public Health, Baltimore, Maryland.
Abstract:
Castration-resistant prostate cancer (CRPC) is largely dependent on the androgen receptor (AR) for growth and often exhibits hyperactive PI3K signaling, most frequently because of PTEN loss. Therapeutic pressure from anti-AR therapies can induce transdifferentiation toward an AR-independent phenotype. Recently, different subtypes of AR-independent CRPC have been redefined, with the stem cell-like (SCL) subtype emerging as one of the most prevalent. Elucidation of the epigenetic mechanisms controlling the maintenance of these distinct CRPC cell states could pave the way for effective combinatorial therapies for CRPC. In this study, we identified a key role for the histone methyltransferase KMT2D in establishing the chromatin competence necessary for the recruitment of AR and FOXA1 transcription factors (TF) that are essential for the AR transcriptional output in AR-dependent CRPC cell lines, patient-derived organoids, and patient samples. Unexpectedly, KMT2D maintained the identity of the AR-low CRPC-SCL subtype and controlled activity of AP-1 TFs such as FOSL1, which acts as a master regulator of this subtype. Single-cell transcriptomics and chromatin assays underscored the role of KMT2D in sustaining a mixed lineage cell state via AP-1 and FOXA1. The combined suppression of PI3K/AKT and KMT2D reduced cell proliferation in prostate cancer cells and patient-derived organoids in both CRPC-AR and CRPC-SCL subtypes. Altogether, these results unveil KMT2D as a major mediator of the epigenetic landscape in subtype-specific CRPC, contributing to tumor growth and therapeutic response.
Significance:
KMT2D is a critical regulator of chromatin accessibility and transcriptional landscapes in castration-resistant prostate cancer that drives both AR-dependent and AR-independent subtypes, highlighting KMT2D as a potential therapeutic target.
Insights
Histone methyltransferase KMT2D plays a crucial role in prostate cancer progression. Targeting KMT2D alongside PI3K/AKT pathways may offer new combinatorial therapies for castration-resistant prostate cancer (CRPC) subtypes.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Castration-resistant prostate cancer (CRPC) often relies on androgen receptor (AR) signaling or hyperactive PI3K pathways.
- Therapeutic resistance can drive CRPC towards AR-independent, stem cell-like (SCL) phenotypes.
- Understanding epigenetic regulation is key to developing effective CRPC treatments.
Purpose of the Study:
- To investigate the role of epigenetic mechanisms in maintaining distinct CRPC subtypes.
- To identify key regulators of AR-dependent and AR-independent CRPC phenotypes.
- To explore KMT2D as a potential therapeutic target in CRPC.
Main Methods:
- Utilized CRPC cell lines, patient-derived organoids, and patient samples.
- Performed chromatin assays and single-cell transcriptomics.
- Investigated the function of KMT2D in regulating transcription factors (AR, FOXA1, AP-1/FOSL1).
Main Results:
- KMT2D is essential for AR and FOXA1 recruitment in AR-dependent CRPC.
- KMT2D unexpectedly maintains the AR-low CRPC-SCL subtype by controlling AP-1 TFs like FOSL1.
- Combined suppression of PI3K/AKT and KMT2D inhibited proliferation in both CRPC subtypes.
Conclusions:
- KMT2D is a critical epigenetic mediator in subtype-specific CRPC.
- KMT2D influences chromatin accessibility for key transcription factors.
- Targeting KMT2D offers a promising strategy for combinatorial therapy in CRPC.
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