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Similarities and Distinctions in Actions of Surface-Directed and Classic Androgen Receptor Antagonists
Ji Ho Suh1, Arundhati Chattopadhyay1, Douglas H Sieglaff1
1Genomic Medicine Program, Houston Methodist Research Institute, 66670 Bertner Avenue, R8-114, Houston, Texas, 77030, United States of America.
Abstract:
The androgen receptor (AR) surface-directed antagonist MJC13 inhibits AR function and proliferation of prostate cancer (PC) cells. These effects are related to arrest of an AR/chaperone complex in the cytoplasm. Here, we compared MJC13 and classic AR antagonists such as flutamide and bicalutamide. Microarray analysis and confirmatory qRT-PCR reveals that MJC13 and flutamide inhibit dihydrotestosterone (DHT)-dependent genes in LNCaP PC cells. Both compounds are equally effective on a genome wide basis and as effective as second generation AR antagonists (MDV3100, ARN-509) at selected genes. MJC13 inhibits AR binding to the prostate specific antigen (PSA) promoter more strongly than flutamide, consistent with different mechanisms of action. Examination of efficacy of MJC13 in conditions that reflect aspects castrate resistant prostate cancer (CRPC) reveals that it inhibits flutamide activation of an AR mutant (ART877A) that emerges during flutamide withdrawal syndrome, but displays greatly restricted gene-specific activity in 22Rv1 cells that express a constitutively active truncated AR and is inactive against glucocorticoid receptor (GR), which can co-opt androgen-dependent signaling networks in CRPC. Importantly, MJC13 inhibits AR interactions with SRC2 and β-catenin in the nucleus and, unlike flutamide, strongly inhibits amplification of AR activity obtained with transfected SRC2 and β-catenin. MJC13 also inhibits DHT and β-catenin-enhanced cell division in LNCaP cells. Thus, a surface-directed antagonist can block AR activity in some conditions in which a classic antagonist fails and may display utility in particular forms of CRPC.
Insights
MJC13, a novel androgen receptor (AR) antagonist, effectively inhibits prostate cancer (PC) cell growth. It shows promise in treating castrate-resistant prostate cancer (CRPC) by blocking AR signaling pathways where traditional drugs fail.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- The androgen receptor (AR) is a key driver of prostate cancer (PC) growth.
- Classic AR antagonists like flutamide and bicalutamide are mainstays of PC treatment.
- Emergence of resistance, including castrate-resistant prostate cancer (CRPC), necessitates novel therapeutic strategies.
Purpose of the Study:
- To compare the efficacy of a surface-directed AR antagonist, MJC13, with classic AR antagonists.
- To investigate MJC13's mechanism of action and its potential utility in CRPC models.
- To evaluate MJC13's activity against AR mutants and its interaction with co-activators.
Main Methods:
- Utilized microarray analysis and qRT-PCR to assess gene expression changes.
- Examined AR binding to the prostate specific antigen (PSA) promoter.
- Investigated AR interactions with SRC2 and β-catenin in nuclear extracts.
- Assessed cell proliferation in response to dihydrotestosterone (DHT) and β-catenin.
Main Results:
- MJC13 and flutamide similarly inhibited DHT-dependent genes in LNCaP PC cells.
- MJC13 demonstrated stronger inhibition of AR binding to the PSA promoter than flutamide.
- MJC13 inhibited an AR mutant (ART877A) associated with flutamide withdrawal syndrome.
- MJC13 effectively inhibited AR interactions with SRC2 and β-catenin, and DHT/β-catenin-enhanced cell division.
Conclusions:
- MJC13 exhibits a distinct mechanism of action compared to classic AR antagonists.
- MJC13 demonstrates efficacy in specific CRPC contexts, including against certain AR mutants.
- MJC13's ability to block AR signaling where classic antagonists fail suggests potential therapeutic utility in CRPC.
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