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Published on: May 26, 2017
The Tumor Suppressor NKX3.1 Is Targeted for Degradation by DYRK1B Kinase
Liang-Nian Song1, Jose Silva2, Antonius Koller3
1Departments of Medicine and Pathology, Columbia University Medical Center, Herbert Irving Comprehensive Cancer Center, Columbia University, New York, New York.
Unlabelled:
NKX3.1 is a prostate-specific homeodomain protein and tumor suppressor whose expression is reduced in the earliest phases of prostatic neoplasia. NKX3.1 expression is not only diminished by genetic loss and methylation, but the protein itself is a target for accelerated degradation caused by inflammation that is common in the aging prostate gland. NKX3.1 degradation is activated by phosphorylation at C-terminal serine residues that mediate ubiquitination and protein turnover. Because NKX3.1 is haploinsufficient, strategies to increase its protein stability could lead to new therapies. Here, a high-throughput screen was developed using an siRNA library for kinases that mediate NKX3.1 degradation. This approach identified several candidates, of which DYRK1B, a kinase that is subject to gene amplification and overexpression in other cancers, had the greatest impact on NKX3.1 half-life. Mechanistically, NKX3.1 and DYRK1B were shown to interact via the DYRK1B kinase domain. In addition, an in vitro kinase assay showed that DYRK1B phosphorylated NKX3.1 at serine 185, a residue critical for NKX3.1 steady-state turnover. Lastly, small-molecule inhibitors of DYRK1B prolonged NKX3.1 half-life. Thus, DYRK1B is a target for enzymatic inhibition in order to increase cellular NKX3.1.
Implications:
DYRK1B is a promising and novel kinase target for prostate cancer treatment mediated by enhancing NKX3.1 levels.
Insights
DYRK1B kinase accelerates prostate tumor suppressor NKX3.1 degradation. Inhibiting DYRK1B increases NKX3.1 levels, offering a new prostate cancer therapy strategy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- NKX3.1 is a prostate-specific tumor suppressor protein.
- Reduced NKX3.1 expression occurs early in prostate cancer and is linked to degradation.
- Inflammation and phosphorylation contribute to NKX3.1 protein loss.
Purpose of the Study:
- To identify kinases mediating NKX3.1 degradation.
- To evaluate DYRK1B as a therapeutic target for increasing NKX3.1 levels.
Main Methods:
- High-throughput siRNA screening to identify kinases targeting NKX3.1.
- Co-immunoprecipitation to assess NKX3.1-DYRK1B interaction.
- In vitro kinase assays to confirm phosphorylation site.
- Treatment with small-molecule DYRK1B inhibitors.
Main Results:
- DYRK1B was identified as a key kinase promoting NKX3.1 degradation.
- DYRK1B directly phosphorylates NKX3.1 at serine 185.
- DYRK1B inhibition significantly prolonged NKX3.1 half-life.
- DYRK1B gene amplification and overexpression are noted in other cancers.
Conclusions:
- DYRK1B is a novel therapeutic target in prostate cancer.
- Inhibiting DYRK1B offers a strategy to restore NKX3.1 tumor suppressor function.
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