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Updated: Oct 19, 2025

Isolation, Culture, and Characterization of Prostate Cancer-Associated Fibroblasts
Published on: August 1, 2025
Loss of CDCP1 triggers FAK activation in detached prostate cancer cells
Sara G Pollan1, Pai-Chi Teng1, Yu Jen Jan1
1Department of Surgery, Cedars-Sinai Medical Center 8700 Beverly Blvd, Los Angeles, CA 90048, USA.
Abstract:
A major metastasis suppressing mechanism is the rapid apoptotic death of cancer cells upon detachment from extracellular matrix, a process called anoikis. Focal adhesion kinase (PTK2/FAK) is a key enzyme involved in evasion of anoikis. We show that loss of the Cub-domain containing protein-1 (CDCP1), paradoxically stimulates FAK activation in the detached state of prostate cancer cells. In CDCP1low DU145 and PC3 prostate cancer cells, detachment-activation of FAK occurs through local production of PI(4,5)P2. PI(4,5)P2 is generated by the PIP5K1c-201 splicing isoform of PIP5K1c, which contains a unique SRC phosphorylation site. In the detached state, reduced expression of CDCP1 and an alternative CDCP1-independent SRC activation mechanism triggers PIP5K1c-pY644 phosphorylation by SRC. This causes a switch of Talin binding from β1-integrin to PIP5K1c-pY644 and leads to activation of PIP5K1c-FAK. Reduced CDCP1 expression also inactivates CDK5, a negative regulator of PIP5K1c. Furthermore, immersion of prostate cancer cells in 10% human plasma or fetal bovine serum is required for activation of PIP5K1c-FAK. The PIP5K1c induced detachment-activation of FAK in preclinical models sensitizes CDCP1low prostate cancer cells to FAK inhibitors. In patients, CDCP1High versus CDCP1low circulating tumor cells differ in expression of AR-v7, ONECUT2 and HOXB13 oncogenes and TMPRSS2 and display intra-patient heterogeneity of FAK-pY397 expression. Taken together, CDCP1low and CDCP1high detached prostate cancer cells activate distinct cytoplasmic kinase complexes and targetable transcription factors, which has important therapeutic implications.
Insights
Loss of CDCP1 protein paradoxically activates Focal Adhesion Kinase (FAK) in detached prostate cancer cells, promoting anoikis evasion. This pathway sensitizes cells to FAK inhibitors, offering new therapeutic strategies.
Area of Science:
- Molecular Biology
- Cancer Cell Biology
- Prostate Cancer Research
Background:
- Anoikis, or apoptotic cell death upon detachment, is a key metastasis suppressor.
- Focal Adhesion Kinase (FAK) plays a crucial role in anoikis evasion.
- Cub-domain containing protein-1 (CDCP1) is implicated in cancer progression.
Purpose of the Study:
- To investigate the paradoxical role of CDCP1 loss in FAK activation in detached prostate cancer cells.
- To elucidate the molecular mechanisms linking CDCP1, PI(4,5)P2, and FAK activation.
- To explore therapeutic implications of CDCP1-mediated FAK activation in prostate cancer.
Main Methods:
- Analysis of CDCP1 expression in prostate cancer cell lines (DU145, PC3).
- Investigated the role of PI(4,5)P2 production and PIP5K1c splicing isoform in FAK activation.
- Utilized preclinical models and patient-derived circulating tumor cells for validation.
Main Results:
- Loss of CDCP1 paradoxically enhances FAK activation in detached prostate cancer cells via PI(4,5)P2 production by PIP5K1c-201.
- CDCP1 loss leads to SRC-mediated phosphorylation of PIP5K1c and inactivation of CDK5, promoting FAK activation.
- CDCP1 low prostate cancer cells are sensitized to FAK inhibitors, and patient CTCs show distinct oncogene expression profiles.
Conclusions:
- CDCP1 status dictates distinct cytoplasmic kinase complexes and transcription factor activation in detached prostate cancer cells.
- Targeting the CDCP1-PI(4,5)P2-FAK axis offers a promising therapeutic strategy for prostate cancer.
- Understanding CDCP1 heterogeneity in circulating tumor cells is crucial for personalized treatment approaches.
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