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Published on: October 24, 2019
Androgen Receptor Enhances p27 Degradation in Prostate Cancer Cells through Rapid and Selective TORC2 Activation
Zi Fang1, Tao Zhang, Nishtman Dizeyi
1Hematology-Oncology Division, Department of Medicine, Beth Israel Deaconess Medical Center, Harvard Medical School, Boston, Massachusetts 02215, USA.
Abstract:
Androgen receptor (AR) plays a central role in prostate cancer (PCa) growth, with androgen deprivation or AR down-regulation causing cell-cycle arrest and accumulation of the p27 cyclin-dependent kinase inhibitor. The molecular basis for this AR regulation of cell-cycle progression remains unclear. Here we demonstrate that androgen can rapidly reduce p27 protein in PCa cells by increasing its proteasome-mediated degradation. This rapid androgen-stimulated p27 degradation was mediated by AKT through the phosphorylation of p27 T157. Significantly, androgen increased TORC2-mediated AKT S473 phosphorylation without affecting the PDK1-mediated AKT T308 phosphorylation or TORC1 activity. The TORC2 activation was further supported by enhanced mTOR/RICTOR association and increased phosphorylation of additional TORC2 substrates, SGK1 and PKCα. The androgen-stimulated nuclear translocation of AR was associated with markedly-increased nuclear SIN1, a critical component of TORC2. Finally, the androgen-mediated TORC2/AKT activation targets a subset of AKT substrates including p27 and FOXO1, but not PRAS40. This study reveals a pathway linking AR to a selective activation of TORC2, the subsequent activation of AKT, and phosphorylation of a discrete set of AKT substrates that regulate cellular proliferation and survival. These findings establish that TORC2 can function as a central regulator of growth in response to signals that are distinct from those regulating TORC1, and support efforts to target TORC2 for cancer therapy.
Insights
Androgen receptor (AR) signaling rapidly degrades the p27 protein in prostate cancer cells via TORC2/AKT activation. This pathway highlights TORC2 as a key regulator of cell growth, offering new therapeutic targets for prostate cancer.
Area of Science:
- Molecular Biology
- Oncology
- Cell Signaling
Background:
- Androgen receptor (AR) is crucial for prostate cancer (PCa) growth.
- AR regulation of cell-cycle progression involves the p27 cyclin-dependent kinase inhibitor, but the mechanism is unclear.
Purpose of the Study:
- To elucidate the molecular basis of AR regulation of cell-cycle progression.
- To investigate the role of androgen in p27 protein regulation in PCa cells.
Main Methods:
- Demonstrated androgen-induced p27 protein reduction via proteasome-mediated degradation.
- Investigated the role of AKT and TORC2 in mediating this degradation.
- Assessed AR nuclear translocation and its association with TORC2 components.
Main Results:
- Androgen rapidly reduces p27 protein by increasing its proteasome-mediated degradation.
- This process is mediated by AKT through p27 T157 phosphorylation, driven by TORC2 activation.
- Androgen stimulates TORC2-mediated AKT S473 phosphorylation and nuclear translocation of AR with SIN1.
Conclusions:
- AR signaling selectively activates TORC2, leading to AKT activation and phosphorylation of substrates like p27.
- TORC2 acts as a distinct growth regulator, independent of TORC1.
- Targeting TORC2 presents a potential therapeutic strategy for prostate cancer.
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