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Updated: Apr 19, 2026

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Salt-inducible kinase 2 regulates mitotic progression and transcription in prostate cancer
Hélène Bon1, Karan Wadhwa1, Alexander Schreiner2
1Uro-oncology Research Group, Cambridge Research Institute, Cambridge, CB2 0RE, UK.
Unlabelled:
Salt-inducible kinase 2 (SIK2) is a multifunctional kinase of the AMPK family that plays a role in CREB1-mediated gene transcription and was recently reported to have therapeutic potential in ovarian cancer. The expression of this kinase was investigated in prostate cancer clinical specimens. Interestingly, auto-antibodies against SIK2 were increased in the plasma of patients with aggressive disease. Examination of SIK2 in prostate cancer cells found that it functions both as a positive regulator of cell-cycle progression and a negative regulator of CREB1 activity. Knockdown of SIK2 inhibited cell growth, delayed cell-cycle progression, induced cell death, and enhanced CREB1 activity. Expression of a kinase-dead mutant of SIK2 also inhibited cell growth, induced cell death, and enhanced CREB1 activity. Treatment with a small-molecule SIK2 inhibitor (ARN-3236), currently in preclinical development, also led to enhanced CREB1 activity in a dose- and time-dependent manner. Because CREB1 is a transcription factor and proto-oncogene, it was posited that the effects of SIK2 on cell proliferation and viability might be mediated by changes in gene expression. To test this, gene expression array profiling was performed and while SIK2 knockdown or overexpression of the kinase-dead mutant affected established CREB1 target genes; the overlap with transcripts regulated by forskolin (FSK), the adenylate cyclase/CREB1 pathway activator, was incomplete.
Implications:
This study demonstrates that targeting SIK2 genetically or therapeutically will have pleiotropic effects on cell-cycle progression and transcription factor activation, which should be accounted for when characterizing SIK2 inhibitors.
Insights
Targeting Salt-inducible kinase 2 (SIK2) impacts prostate cancer cell growth and CREB1 activity. Inhibiting SIK2 shows therapeutic potential but affects multiple cellular processes, requiring careful consideration for drug development.
Area of Science:
- Molecular Biology
- Cancer Research
- Biochemistry
Background:
- Salt-inducible kinase 2 (SIK2) is an AMPK family kinase involved in CREB1-mediated transcription.
- SIK2 has shown therapeutic potential in ovarian cancer.
- SIK2 expression and function in prostate cancer are not well understood.
Purpose of the Study:
- To investigate the role of SIK2 in prostate cancer.
- To examine the relationship between SIK2, cell-cycle progression, and CREB1 activity.
- To evaluate the therapeutic potential of targeting SIK2 in prostate cancer.
Main Methods:
- Analysis of SIK2 expression in prostate cancer clinical specimens.
- In vitro studies involving SIK2 knockdown, kinase-dead mutant expression, and small-molecule inhibitor treatment (ARN-3236).
- Assessment of cell-cycle progression, cell death, CREB1 activity, and gene expression profiling.
Main Results:
- Increased auto-antibodies against SIK2 were found in patients with aggressive prostate cancer.
- SIK2 promotes cell-cycle progression and inhibits CREB1 activity in prostate cancer cells.
- Genetic or pharmacological inhibition of SIK2 reduced cell growth, induced cell death, and enhanced CREB1 activity.
- Gene expression changes upon SIK2 manipulation partially overlapped with CREB1 pathway activation.
Conclusions:
- Targeting SIK2 genetically or therapeutically has broad effects on cell-cycle progression and transcription factor activity.
- These pleiotropic effects must be considered when developing SIK2 inhibitors for cancer therapy.
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