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Updated: Dec 24, 2025

Phosphopeptide Enrichment Coupled with Label-free Quantitative Mass Spectrometry to Investigate the Phosphoproteome in Prostate Cancer
Published on: August 2, 2018
AR-dependent phosphorylation and phospho-proteome targets in prostate cancer
Varadha Balaji Venkadakrishnan1,2, Salma Ben-Salem1, Hannelore V Heemers1
1Department of Cancer Biology, Cleveland Clinic, Cleveland, Ohio, USA.
Abstract:
Prostate cancer (CaP) is the second leading cause of cancer-related deaths in Western men. Because androgens drive CaP by activating the androgen receptor (AR), blocking AR's ligand activation, known as androgen deprivation therapy (ADT), is the default treatment for metastatic CaP. Despite an initial remission, CaP eventually develops resistance to ADT and progresses to castration-recurrent CaP (CRPC). CRPC continues to rely on aberrantly activated AR that is no longer inhibited effectively by available therapeutics. Interference with signaling pathways downstream of activated AR that mediate aggressive CRPC behavior may lead to alternative CaP treatments. Developing such therapeutic strategies requires a thorough mechanistic understanding of the most clinically relevant and druggable AR-dependent signaling events. Recent proteomics analyses of CRPC clinical specimens indicate a shift in the phosphoproteome during CaP progression. Kinases and phosphatases represent druggable entities, for which clinically tested inhibitors are available, some of which are incorporated already in treatment plans for other human malignancies. Here, we reviewed the AR-associated transcriptome and translational regulon, and AR interactome involved in CaP phosphorylation events. Novel and for the most part mutually exclusive AR-dependent transcriptional and post-transcriptional control over kinase and phosphatase expression was found, with yet other phospho-regulators interacting with AR. The multiple mechanisms by which AR can shape and fine-tune the CaP phosphoproteome were reflected in diverse aspects of CaP biology such as cell cycle progression and cell migration. Furthermore, we examined the potential, limitations and challenges of interfering with AR-mediated phosphorylation events as alternative strategy to block AR function during CaP progression.
Insights
Prostate cancer (CaP) progresses to castration-recurrent CaP (CRPC) despite androgen deprivation therapy (ADT). Understanding AR-mediated phosphorylation is key to developing new CRPC treatments targeting kinases and phosphatases.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Prostate cancer (CaP) is a leading cause of cancer death in Western men.
- Androgen receptor (AR) signaling drives CaP, making androgen deprivation therapy (ADT) the standard treatment.
- CaP often develops resistance to ADT, progressing to castration-recurrent CaP (CRPC) which still relies on aberrant AR activation.
Purpose of the Study:
- To review AR-associated signaling pathways, focusing on phosphorylation events in CaP progression.
- To explore novel AR-dependent mechanisms controlling kinase and phosphatase expression.
- To evaluate the potential of targeting AR-mediated phosphorylation for alternative CaP treatments.
Main Methods:
- Review of AR-associated transcriptome, translational regulon, and AR interactome.
- Analysis of CaP phosphoproteome shifts during progression.
- Examination of AR's role in regulating kinases and phosphatases.
Main Results:
- Identified novel, often mutually exclusive, AR-dependent transcriptional and post-transcriptional controls over kinase and phosphatase expression.
- Discovered AR-interacting phospho-regulators.
- Demonstrated AR's influence on CaP cell cycle progression and migration via phosphoproteome modulation.
Conclusions:
- AR significantly shapes the CaP phosphoproteome through diverse regulatory mechanisms.
- Targeting AR-mediated phosphorylation presents a potential therapeutic strategy for CRPC.
- Further research is needed to overcome challenges in developing these alternative treatments.
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