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Combined BET bromodomain and DNA methyltransferase inhibition targets critical survival pathways in transdifferentiated prostate cancer
William K. Storck, Diana Flores, Anbarasu Kumaraswamy, Zhi Duan, Shrabastee Chakraborty, Chao Zhang, Eva Rodansky, Dhruv Khokhani, Olivia A. Swaim, Karan Bedi, Raymond G. Cavalcante, Canping Chen, Faming Zhao, Ya-Mei Hu, Zheng Xia, Ryan J. Rebernick, Marcin Cieslik, Rahul Mannan, Somnath Mahapatra, Arul M. Chinnaiyan, Aaron M. Udager, Joshua A. Kuleape, Catherine R. Alumkal, Hannah N. Beck, Peter S. Nelson, Colm Morrissey, Michael C. Haffner, Leigh Ellis, Yuzhuo Wang, Joel A. Yates, Joshi J. Alumkal
William K. Storck, Diana Flores, Anbarasu Kumaraswamy, Zhi Duan, Shrabastee Chakraborty, Chao Zhang, Eva Rodansky, Dhruv Khokhani, Olivia A. Swaim, Karan Bedi, Raymond G. Cavalcante, Canping Chen, Faming Zhao, Ya-Mei Hu, Zheng Xia, Ryan J. Rebernick, Marcin Cieslik, Rahul Mannan, Somnath Mahapatra, Arul M. Chinnaiyan, Aaron M. Udager, Joshua A. Kuleape, Catherine R. Alumkal, Hannah N. Beck, Peter S. Nelson, Colm Morrissey, Michael C. Haffner, Leigh Ellis, Yuzhuo Wang, Joel A. Yates, Joshi J. Alumkal
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Research Article Cell biology Oncology

Combined BET bromodomain and DNA methyltransferase inhibition targets critical survival pathways in transdifferentiated prostate cancer

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Abstract

Lineage plasticity, or transdifferentiation, is increasingly recognized as a resistance mechanism to androgen receptor (AR) inhibition in prostate cancer. Lineage plasticity is characterized by loss of AR signaling and epithelial differentiation, along with activation of stemness-associated pathways, epithelial-mesenchymal transition, or alternative differentiation programs such as neuroendocrine prostate cancer (NEPC). Loss of the tumor suppressors TP53 and RB1 is common in tumors exhibiting lineage plasticity; however, the mechanisms by which TP53/RB1 loss promotes this phenotype remain poorly understood, and effective treatments are limited. Using multiomic profiling of TP53/RB1-loss prostate cancer models, we identified alterations in chromatin accessibility, DNA methylation, and gene expression associated with lineage plasticity. Importantly, many pathways activated upon TP53/RB1 loss could be blocked through BET bromodomain inhibition. TP53/RB1-deficient cells also harbored widespread DNA methylation changes that silenced pathways linked with restraining lineage plasticity. Combined BET bromodomain and DNA methyltransferase (DNMT) inhibition was more effective than single-agent treatment in suppressing growth of TP53/RB1-loss models exhibiting a stem-like or NEPC program. This was partly explained by abrogation of discrete lineage plasticity pathways modulated by each agent. Altogether, our work suggests combined BET bromodomain and DNMT inhibition is a promising therapeutic approach for prostate tumors exhibiting lineage plasticity.

Authors

William K. Storck, Diana Flores, Anbarasu Kumaraswamy, Zhi Duan, Shrabastee Chakraborty, Chao Zhang, Eva Rodansky, Dhruv Khokhani, Olivia A. Swaim, Karan Bedi, Raymond G. Cavalcante, Canping Chen, Faming Zhao, Ya-Mei Hu, Zheng Xia, Ryan J. Rebernick, Marcin Cieslik, Rahul Mannan, Somnath Mahapatra, Arul M. Chinnaiyan, Aaron M. Udager, Joshua A. Kuleape, Catherine R. Alumkal, Hannah N. Beck, Peter S. Nelson, Colm Morrissey, Michael C. Haffner, Leigh Ellis, Yuzhuo Wang, Joel A. Yates, Joshi J. Alumkal

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Figure 5

BETi and DNMTi combination treatment leads to superior growth suppression in NEPC in vitro.

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BETi and DNMTi combination treatment leads to superior growth suppressio...
(A) Cell count viability of LTL331R (26) cells after 72-hour daily treatment of indicated dose of ZEN, dAZA, or ZEN plus dAZA combination. (B) EdU incorporation and apoptosis assays using LTL331R (26) cells after 72-hour daily treatment with indicated dose of ZEN, dAZA, or ZEN plus dAZA combination. (C) Cell count viability of LTL331R (26) cells after long-term treatments. Cells were treated with indicated doses of ZEN, dAZA, or the combination for 72 hours daily before plating followed by sustained ZEN or ZEN-vehicle treatment without dAZA for 7 days. (D) Representative top gene sets (FDR < 0.1) composed of castration-induced lineage plasticity–modulated genes that are reversed with ZEN plus dAZA combination treatment in LTL331R (26) cells. Left: heatmaps depicting the relative differential gene expression in single-agent or combination-treated versus vehicle-treated control samples for castration-induced lineage plasticity–modulated genes that are reversed with treatment. Right: gene set ORA on genes modulated by castration-induced lineage plasticity that were reversed by combination treatment only (ZEN + dAZA), ZEN alone or combination treatment (ZEN and ZEN + dAZA), dAZA alone or combination treatment (dAZA and ZEN + dAZA), or either single agent alone or combination treatment (ZEN, dAZA, and ZEN + dAZA). Statistical significance was determined using hypergeometric test followed by Benjamini-Hochberg correction. Data presented in A–C are the mean ± SD (n = 3 for each treatment condition in A–C). Statistical significance in A–C was determined using 1-way ANOVA with Benjamini-Hochberg multiple testing correction. *P < 0.05; **P < 0.01; ***P < 0.001; ****P < 0.0001.

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