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Updated: Oct 15, 2025

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
CKB inhibits epithelial-mesenchymal transition and prostate cancer progression by sequestering and inhibiting AKT
Zheng Wang1, Mohit Hulsurkar2, Lijuan Zhuo3
1Texas Therapeutics Institute, Brown Foundation Institute of Molecular Medicine, University of Texas Health Science Center at Houston, Houston, TX, USA.
Abstract:
Epithelial-mesenchymal transition (EMT) contributes to tumor invasion, metastasis and drug resistance. AKT activation is key in a number of cellular processes. While many positive regulators for either EMT or AKT activation have been reported, few negative regulators are established. Through kinase cDNA screen, we identified brain-type creatine kinase (CKB or BCK) as a potent suppressor for both. As a ubiquitously expressed kinase in normal tissues, CKB is significantly downregulated in several solid cancer types. Lower CKB expression is significantly associated with worse prognosis. Phenotypically, CKB overexpression suppresses, while its silencing promotes, EMT and cell migration, xenograft tumor growth and metastasis of prostate cancer cells. AKT activation is one of the most prominent signaling events upon CKB silencing in prostate cancer cells, which is in line with prostate cancer TCGA data. EMT enhanced by CKB silencing is abolished by AKT inhibition. Mechanistically, CKB interacts with AKT and sequestrates it from activation by mTOR. We further elucidated that an 84aa fragment at C-terminus of CKB protein interacts with AKT's PH domain. Ectopic expression of the 84aa CKB fragment inhibits AKT activation, EMT and cell proliferation. Interestingly, molecular dynamics simulation on crystal structures of AKT and CKB independently demonstrates that AKT's PH domain and CKB's 84aa fragment establish their major interaction interface. In summary, we have discovered CKB as a negative regulator of EMT and AKT activation, revealing a new mode of their regulation . We have also demonstrated that CKB downregulation is a poor prognosticator, which is sufficient to promote prostate cancer progression.
Insights
Brain-type creatine kinase (CKB) suppresses tumor invasion and metastasis by inhibiting epithelial-mesenchymal transition (EMT) and AKT activation. CKB downregulation is linked to poor prognosis in cancer, highlighting its role as a tumor suppressor.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Epithelial-mesenchymal transition (EMT) drives tumor invasion, metastasis, and drug resistance.
- AKT activation is crucial for cellular processes, but its negative regulators are poorly understood.
- Identifying novel suppressors of EMT and AKT is vital for cancer therapy.
Purpose of the Study:
- To identify and characterize negative regulators of both EMT and AKT activation.
- To investigate the role of brain-type creatine kinase (CKB) in cancer progression.
- To elucidate the mechanism by which CKB regulates EMT and AKT signaling.
Main Methods:
- Kinase cDNA screening to identify CKB as a suppressor.
- Overexpression and silencing studies in prostate cancer cells.
- Analysis of CKB expression in human cancer tissues and correlation with prognosis.
- Western blotting and molecular dynamics simulations to study protein interactions and signaling pathways.
Main Results:
- CKB was identified as a potent suppressor of both EMT and AKT activation.
- CKB is downregulated in several solid cancers and associated with worse prognosis.
- CKB overexpression inhibited, while silencing promoted, EMT, cell migration, tumor growth, and metastasis in prostate cancer models.
- CKB directly interacts with AKT, sequestering it from mTOR-mediated activation via its C-terminal 84aa fragment.
Conclusions:
- CKB acts as a novel negative regulator of EMT and AKT activation, revealing a new regulatory mechanism.
- CKB downregulation is a prognostic marker for poor outcomes in cancer.
- CKB's suppressive function on EMT and AKT activation offers potential therapeutic strategies for cancer treatment.
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