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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
A feedback loop between the androgen receptor and a NEDD4-binding protein, PMEPA1, in prostate cancer cells
Hongyun Li1, Linda L Xu, Katsuaki Masuda
1Center for Prostate Disease Research, Department of Surgery, Uniformed Services University of the Health Sciences, Rockville, Maryland 20852, USA.
Abstract:
PMEPA1 was identified originally as a highly androgen-inducible gene with prostate-abundant expression that was restricted to prostatic epithelial cells. PMEPA1 protein is a NEDD4 (ubiquitin-protein isopeptide ligase)-binding protein, which negatively regulates prostate cancer cell growth. In this study we establish that PMEPA1 is a direct transcriptional target of the androgen receptor (AR). We also demonstrate that PMEPA1 negatively regulates AR protein levels in different cell culture models. Transient expression of PMEPA1 down-regulates AR protein levels and AR transcriptional targets in prostate cancer cells. Conversely, knockdown of PMEPA1 leads to elevated levels of AR protein, AR transcriptional targets (prostate-specific antigen), and increased cell cycle S phase. We define that the PMEPA1-dependent down-regulation of AR is because of AR ubiquitination and proteasome-mediated degradation. The mutant PMEPA1 (PY1/2 motif mutation) that is impaired in NEDD4 recruitment shows attenuated AR ubiquitination and AR protein down-regulation. These data support the hypothesis that PMEPA1 negatively regulates the stability of AR protein by enhancing AR ubiquitination and proteasome-mediated degradation through NEDD4. The effect of PMEPA1 on AR ubiquitination and degradation appears to be MDM2-independent. Thus, the PMEPA1-AR degradation pathway may represent a new androgen-dependent mechanism for regulating AR levels in prostate epithelial cells. These findings underscore that the decreased PMEPA1 expression frequently noted in prostate cancers may lead to increased AR functions and strengthen the biological role of PMEPA1 in prostate cancers.
Insights
Prostate cancer gene PMEPA1 targets the androgen receptor (AR), reducing AR levels by promoting its degradation. Lower PMEPA1 expression in cancers may increase AR activity, highlighting PMEPA1
Area of Science:
- Molecular Biology
- Oncology
- Cell Biology
Background:
- PMEPA1 is an androgen-inducible gene in prostate epithelial cells.
- PMEPA1 protein binds to NEDD4 and inhibits prostate cancer cell growth.
- Androgen Receptor (AR) signaling is crucial in prostate cancer development and progression.
Purpose of the Study:
- To investigate the regulatory relationship between PMEPA1 and AR.
- To elucidate the mechanism by which PMEPA1 affects AR protein levels.
- To explore the implications of PMEPA1-AR interaction in prostate cancer.
Main Methods:
- Investigated PMEPA1 as a direct transcriptional target of AR.
- Utilized cell culture models to assess PMEPA1's effect on AR protein levels and activity.
- Examined AR ubiquitination and proteasomal degradation pathways.
- Employed mutant PMEPA1 to study the role of NEDD4 recruitment.
Main Results:
- PMEPA1 is a direct transcriptional target of AR.
- PMEPA1 expression down-regulates AR protein levels and AR transcriptional targets.
- PMEPA1 mediates AR degradation through ubiquitination and proteasome-dependent pathways, involving NEDD4.
- Knockdown of PMEPA1 increases AR levels, PSA expression, and S phase progression.
- PMEPA1's effect on AR degradation is independent of MDM2.
Conclusions:
- PMEPA1 negatively regulates AR protein stability via NEDD4-mediated ubiquitination and proteasomal degradation.
- This PMEPA1-AR degradation pathway represents a novel androgen-dependent mechanism for AR regulation in prostate cells.
- Decreased PMEPA1 expression in prostate cancers may enhance AR function, underscoring PMEPA1's biological role in cancer progression.
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