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Generation of Prostate Cancer Cell Models of Resistance to the Anti-mitotic Agent Docetaxel
Published on: September 8, 2017
Understanding the function of Pax5 in development of docetaxel-resistant neuroendocrine-like prostate cancers
Sreyashi Bhattacharya1, Hannah L Harris2, Ridwan Islam1
1Department of Biochemistry and Molecular Biology, University of Nebraska Medical Center, Omaha, NE, USA.
Abstract:
Resistance to the current Androgen Receptor Signaling Inhibitor (ARSI) therapies has led to higher incidences of therapy-induced neuroendocrine-like prostate cancer (t-NEPC). This highly aggressive subtype with predominant small-cell-like characteristics is resistant to taxane chemotherapies and has a dismal overall survival. t-NEPCs are mostly treated with platinum-based drugs with a combination of etoposide or taxane and have less selectivity and high systemic toxicity, which often limit their clinical potential. During t-NEPC transformation, adenocarcinomas lose their luminal features and adopt neuro-basal characteristics. Whether the adaptive neuronal characteristics of t-NEPC are responsible for such taxane resistance remains unknown. Pathway analysis from patient gene-expression databases indicates that t-NEPC upregulates various neuronal pathways associated with enhanced cellular networks. To identify transcription factor(s) (TF) that could be important for promoting the gene expression for neuronal characters in t-NEPC, we performed ATAC-Seq, acetylated-histone ChIP-seq, and RNA-seq in our NE-like cell line models and analyzed the promoters of transcriptionally active and significantly enriched neuroendocrine-like (NE-like) cancer-specific genes. Our results indicate that Pax5 could be an important transcription factor for neuronal gene expression and specific to t-NEPC. Pathway analysis revealed that Pax5 expression is involved in axonal guidance, neurotransmitter regulation, and neuronal adhesion, which are critical for strong cellular communications. Further results suggest that depletion of Pax5 disrupts neurite-mediated cellular communication in NE-like cells and reduces surface growth factor receptor activation, thereby, sensitizing them to docetaxel therapies. Moreover, t-NEPC-specific hydroxymethylation of Pax5 promoter CpG islands favors Pbx1 binding to induce Pax5 expression. Based on our study, we concluded that continuous exposure to ARSI therapies leads to epigenetic modifications and Pax5 activation in t-NEPC, which promotes the expression of genes necessary to adopt taxane-resistant NE-like cancer. Thus, targeting the Pax5 axis can be beneficial for reverting their taxane sensitivity.
Insights
Therapy-induced neuroendocrine-like prostate cancer (t-NEPC) develops resistance to ARSI treatments. Pax5 activation drives neuronal features and taxane resistance in t-NEPC, suggesting Pax5 as a therapeutic target to restore sensitivity.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Androgen Receptor Signaling Inhibitor (ARSI) therapies can induce aggressive therapy-induced neuroendocrine-like prostate cancer (t-NEPC).
- t-NEPC exhibits resistance to standard taxane chemotherapies and has poor survival rates.
- Current treatments for t-NEPC have limited efficacy and significant systemic toxicity.
Purpose of the Study:
- To identify key transcription factors driving neuronal characteristics in t-NEPC.
- To investigate the role of these factors in taxane resistance.
- To explore potential therapeutic targets for overcoming treatment resistance in t-NEPC.
Main Methods:
- Utilized ATAC-Seq, ChIP-seq, and RNA-seq on NE-like cell line models.
- Analyzed transcriptionally active and enriched NE-like cancer-specific genes.
- Performed pathway analysis to understand gene expression regulation and functional roles.
Main Results:
- Identified Pax5 as a crucial transcription factor for neuronal gene expression in t-NEPC.
- Demonstrated that Pax5 regulates pathways involved in neuronal communication and adhesion.
- Showed that Pax5 depletion sensitizes NE-like cells to docetaxel by disrupting cellular communication and growth factor signaling.
- Revealed epigenetic modifications, including hydroxymethylation, that promote Pax5 expression via Pbx1 binding.
Conclusions:
- ARSI therapy induces epigenetic changes leading to Pax5 activation in t-NEPC.
- Pax5 activation promotes taxane resistance by enabling NE-like cancer traits.
- Targeting the Pax5 pathway offers a promising strategy to re-sensitize t-NEPC to taxane therapies.
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