Chromatin-directed proteomics-identified network of endogenous androgen receptor in prostate cancer cells
Kaisa-Mari Launonen1, Ville Paakinaho1, Gianluca Sigismondo2
1Institute of Biomedicine, Faculty of Health Sciences, University of Eastern Finland, Kuopio, Finland.
Abstract:
Treatment of prostate cancer confronts resistance to androgen receptor (AR)-targeted therapies. AR-associated coregulators and chromatin proteins hold a great potential for novel therapy targets. Here, we employed a powerful chromatin-directed proteomics approach termed ChIP-SICAP to uncover the composition of chromatin protein network, the chromatome, around endogenous AR in castration resistant prostate cancer (CRPC) cells. In addition to several expected AR coregulators, the chromatome contained many nuclear proteins not previously associated with the AR. In the context of androgen signaling in CRPC cells, we further investigated the role of a known AR-associated protein, a chromatin remodeler SMARCA4 and that of SIM2, a transcription factor without a previous association with AR. To understand their role in chromatin accessibility and AR target gene expression, we integrated data from ChIP-seq, RNA-seq, ATAC-seq and functional experiments. Despite the wide co-occurrence of SMARCA4 and AR on chromatin, depletion of SMARCA4 influenced chromatin accessibility and expression of a restricted set of AR target genes, especially those involved in cell morphogenetic changes in epithelial-mesenchymal transition. The depletion also inhibited the CRPC cell growth, validating SMARCA4's functional role in CRPC cells. Although silencing of SIM2 reduced chromatin accessibility similarly, it affected the expression of a much larger group of androgen-regulated genes, including those involved in cellular responses to external stimuli and steroid hormone stimulus. The silencing also reduced proliferation of CRPC cells and tumor size in chick embryo chorioallantoic membrane assay, further emphasizing the importance of SIM2 in CRPC cells and pointing to the functional relevance of this potential prostate cancer biomarker in CRPC cells. Overall, the chromatome of AR identified in this work is an important resource for the field focusing on this important drug target.
Insights
Researchers identified new proteins interacting with the androgen receptor (AR) in prostate cancer. Targeting SMARCA4 and SIM2 shows promise for inhibiting castration-resistant prostate cancer (CRPC) growth and progression.
Area of Science:
- Oncology
- Molecular Biology
- Proteomics
Background:
- Prostate cancer treatment faces challenges with resistance to androgen receptor (AR)-targeted therapies.
- AR-associated coregulators and chromatin proteins represent potential novel therapeutic targets.
- Understanding the AR chromatin network is crucial for developing new CRPC treatments.
Purpose of the Study:
- To identify the chromatin protein network (chromatome) associated with the AR in castration-resistant prostate cancer (CRPC) cells.
- To investigate the functional roles of SMARCA4 and SIM2 in AR signaling, chromatin accessibility, and gene expression in CRPC.
- To explore novel therapeutic targets for CRPC by analyzing the AR chromatome.
Main Methods:
- Chromatin-directed proteomics (ChIP-SICAP) to map the AR chromatome.
- Integration of ChIP-seq, RNA-seq, and ATAC-seq data.
- Functional experiments including gene depletion and cell growth assays, and chick embryo chorioallantoic membrane assays.
Main Results:
- The AR chromatome includes known AR coregulators and novel associated nuclear proteins.
- SMARCA4 depletion impacted AR target genes related to epithelial-mesenchymal transition and inhibited CRPC cell growth.
- SIM2 silencing affected a broader range of androgen-regulated genes, reduced CRPC cell proliferation, and tumor size in vivo.
Conclusions:
- SMARCA4 and SIM2 play significant roles in CRPC progression and represent potential therapeutic targets.
- The identified AR chromatome provides a valuable resource for discovering new strategies against AR-driven prostate cancer.
- SIM2 may serve as a functional biomarker for CRPC.
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