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Sequencing Small Non-coding RNA from Formalin-fixed Tissues and Serum-derived Exosomes from Castration-resistant Prostate Cancer Patients
Published on: November 19, 2019
Mechanisms of androgen receptor repression in prostate cancer
S M Powell1, G N Brooke, H C Whitaker
1Androgen Signalling Laboratory, Department of Oncology, Imperial College London, Hammersmith Hospital, London W12 0NN, UK.
Abstract:
Anti-androgens used in prostate cancer therapy inhibit AR (androgen receptor) activity via largely unknown mechanisms. Although initially successful in most cases, they eventually fail and the disease progresses. We need to elucidate how anti-androgens work to understand why they fail, and prolong their effects or design further therapies. Using a cellular model, we found different anti-androgens have diverse effects on subcellular localization of AR, revealing that they work via different mechanisms and suggesting that an informed sequential treatment regime may benefit patients. In the presence of the anti-androgens bicalutamide and hydroxyflutamide, a significant proportion of the AR is translocated to the nucleus but remains inactive. Receptor inhibition under these conditions is likely to involve recruitment of co-repressor proteins, which interact with antagonist-occupied receptor but inhibit receptor-dependent transcription. Which co-repressors are required in vivo for AR repression by anti-androgens is not clear, but one candidate is the Notch effector Hey1. This inhibits ligand-dependent activity of the AR but not other steroid receptors. Further, it is excluded from the nucleus in most human prostate cancers, suggesting that abnormal subcellular distribution of co-repressors may contribute to the aberrant hormonal responses observed in prostate cancer. A decrease in co-repressor function is one possible explanation for the development of anti-androgen-resistant prostate cancer, and this suggests that it may not occur at the gross level of protein expression.
Insights
Different anti-androgens affect prostate cancer cells uniquely, impacting androgen receptor (AR) localization. Understanding these diverse mechanisms is key to overcoming treatment resistance and improving therapies.
Area of Science:
- Oncology
- Molecular Biology
- Endocrinology
Background:
- Anti-androgens are crucial for prostate cancer therapy, inhibiting androgen receptor (AR) activity.
- Current therapies eventually fail, leading to disease progression, necessitating a deeper understanding of their mechanisms.
Purpose of the Study:
- To elucidate the mechanisms of anti-androgen action and resistance in prostate cancer.
- To investigate the diverse effects of different anti-androgens on AR subcellular localization and activity.
Main Methods:
- Utilized a cellular model to study the effects of anti-androgens (bicalutamide, hydroxyflutamide) on AR localization.
- Investigated the role of co-repressor proteins, such as Hey1, in AR inhibition.
Main Results:
- Different anti-androgens induce distinct AR subcellular localization patterns, indicating varied mechanisms of action.
- AR translocates to the nucleus but remains inactive with certain anti-androgens, suggesting co-repressor involvement.
- Hey1 is identified as a potential co-repressor for AR inhibition, with its nuclear exclusion in prostate cancer linked to aberrant hormonal responses.
Conclusions:
- Diverse anti-androgen mechanisms necessitate informed, sequential treatment strategies for prostate cancer patients.
- Co-repressor dysfunction, potentially at a non-expression level, may drive anti-androgen resistance in prostate cancer.
- Understanding AR and co-repressor dynamics is vital for developing more effective prostate cancer therapies.
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