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Updated: May 11, 2026

Multiplexed Live-Cell Imaging for Drug Responses in Patient-Derived Organoid Models of Cancer
Published on: January 5, 2024
Differential cytotoxic activity of a novel palladium-based compound on prostate cell lines, primary prostate
Engin Ulukaya1, Fiona M Frame, Buse Cevatemre
1Department of Medical Biochemistry, Medical School, Uludag University, Bursa, Turkey. eulukaya@uludag.edu.tr
Abstract:
The outcome for patients with advanced metastatic and recurrent prostate cancer is still poor. Therefore, new chemotherapeutics are required, especially for killing cancer stem cells that are thought to be responsible for disease recurrence. In this study, we screened the effect of a novel palladium-based anticancer agent (Pd complex) against six different prostate cancer cell lines, and primary cultures from seven Gleason 6/7 prostate cancer, three Gleason 8/9 prostate cancer and four benign prostate hyperplasia patient samples, as well as cancer stem cells selected from primary cultures. MTT and ATP viability assays were used to assess cell growth and flow cytometry to assess cell cycle status. In addition, immunofluorescence was used to detect γH2AX nuclear foci, indicative of DNA damage, and Western blotting to assess the induction of apoptosis and autophagy. The Pd complex showed a powerful growth-inhibitory effect against both cell lines and primary cultures. More importantly, it successfully reduced the viability of cancer stem cells as first reported in this study. The Pd complex induced DNA damage and differentially induced evidence of cell death, as well as autophagy. In conclusion, this novel agent may be promising for use against the bulk of the tumour cell population as well as the prostate cancer stem cells, which are thought to be responsible for the resistance of metastatic prostate cancer to chemotherapy. This study also indicates that the combined use of the Pd complex with an autophagy modulator may be a more promising approach to treat prostate cancer. In addition, the differential effects observed between cell lines and primary cells emphasise the importance of the model used to test novel drugs including its genetic background, and indeed the necessity of using cells cultured from patient samples.
Insights
A novel palladium-based anticancer agent effectively inhibits prostate cancer growth, including resistant cancer stem cells. Combined with autophagy modulators, this agent shows promise for treating advanced prostate cancer.
Area of Science:
- Oncology
- Medicinal Chemistry
- Cancer Stem Cell Biology
Background:
- Prostate cancer outcomes remain poor, necessitating novel chemotherapeutics.
- Cancer stem cells are implicated in disease recurrence and chemotherapy resistance.
- Targeting both bulk tumor cells and cancer stem cells is crucial for effective treatment.
Purpose of the Study:
- To evaluate a novel palladium-based complex (Pd complex) as an anticancer agent.
- To assess the efficacy of the Pd complex against prostate cancer cell lines, primary cultures, and cancer stem cells.
- To investigate the mechanisms of action, including DNA damage, apoptosis, and autophagy induction.
Main Methods:
- Screening the Pd complex against six prostate cancer cell lines and primary patient samples (Gleason 6/7, 8/9, and benign).
- Assessing cell viability using MTT and ATP assays.
- Analyzing cell cycle, DNA damage (γH2AX foci), apoptosis, and autophagy via flow cytometry, immunofluorescence, and Western blotting.
Main Results:
- The Pd complex demonstrated potent growth inhibition in cell lines and primary cultures.
- Crucially, the Pd complex significantly reduced the viability of prostate cancer stem cells.
- Induction of DNA damage, cell death, and autophagy was observed, with differential effects noted.
Conclusions:
- The novel Pd complex shows promise against both bulk prostate cancer cells and cancer stem cells.
- Combination therapy with autophagy modulators may enhance treatment efficacy.
- Using patient-derived cells and considering genetic background is vital for drug development.

