Loss of PTEN Accelerates NKX3.1 Degradation to Promote Prostate Cancer Progression
Cai Bowen1, Michael C Ostrowski2, Gustavo Leone3
1Departments of Medicine and of Pathology and Cell Biology, Columbia University Medical Center, Herbert Irving Comprehensive Cancer Center, Columbia University, New York, New York.
Abstract:
NKX3.1 is the most commonly deleted gene in prostate cancer and a gatekeeper suppressor. NKX3.1 is a growth suppressor, mediator of apoptosis, inducer of antioxidants, and enhancer of DNA repair. PTEN is a ubiquitous tumor suppressor that is often decreased in prostate cancer during tumor progression. Steady-state turnover of NKX3.1 is mediated by DYRK1B phosphorylation at NKX3.1 serine 185 that leads to polyubiquitination and proteasomal degradation. In this study, we show PTEN is an NKX3.1 phosphatase that protects NKX3.1 from degradation. PTEN specifically opposed phosphorylation at NKX3.1(S185) and prolonged NKX3.1 half-life. PTEN and NKX3.1 interacted primarily in the nucleus as loss of PTEN nuclear localization abrogated its ability to bind to and protect NKX3.1 from degradation. The effect of PTEN on NKX3.1 was mediated via rapid enzyme-substrate interaction. An effect of PTEN on Nkx3.1 gene transcription was seen in vitro, but not in vivo. In gene-targeted mice, Nkx3.1 expression significantly diminished shortly after loss of Pten expression in the prostate. Nkx3.1 loss primarily increased prostate epithelial cell proliferation in vivo. In these mice, Nkx3.1 mRNA was not affected by Pten expression. Thus, the prostate cancer suppressors PTEN and NKX3.1 interact and loss of PTEN is responsible, at least in part, for progressive loss of NKX3.1 that occurs during tumor progression. SIGNIFICANCE: PTEN functions as a phosphatase of NKX3.1, a gatekeeper suppressor of prostate cancer.
Insights
Phosphatase and tensin homolog (PTEN) protects the prostate cancer suppressor NKX3.1 from degradation. Loss of PTEN leads to decreased NKX3.1 levels and increased prostate cell proliferation, driving tumor progression.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- NKX3.1 is a critical prostate tumor suppressor gene, frequently deleted in prostate cancer.
- PTEN is a well-established tumor suppressor often downregulated during prostate cancer progression.
- NKX3.1 stability is regulated by phosphorylation and proteasomal degradation, mediated by DYRK1B.
Purpose of the Study:
- To investigate the regulatory relationship between PTEN and NKX3.1 in prostate cancer.
- To determine if PTEN influences NKX3.1 stability and function.
- To elucidate the mechanism by which PTEN affects NKX3.1 levels.
Main Methods:
- Biochemical assays to assess PTEN's phosphatase activity on NKX3.1.
- Co-immunoprecipitation to study PTEN-NKX3.1 interaction in the nucleus.
- Analysis of Nkx3.1 expression and prostate cell proliferation in gene-targeted mouse models with Pten loss.
Main Results:
- PTEN dephosphorylates NKX3.1 at serine 185, preventing its degradation.
- PTEN and NKX3.1 interact in the nucleus, and PTEN binding prolongs NKX3.1's half-life.
- Loss of Pten in mice leads to decreased Nkx3.1 expression and increased prostate epithelial cell proliferation.
Conclusions:
- PTEN acts as a phosphatase for NKX3.1, stabilizing this key tumor suppressor.
- The interaction between PTEN and NKX3.1 is crucial for maintaining prostate homeostasis.
- Loss of PTEN contributes to prostate cancer progression through the downregulation of NKX3.1.
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