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Published on: October 17, 2025
DCK is frequently inactivated in acquired gemcitabine-resistant human cancer cells
Yuriko Saiki1, Yuki Yoshino, Hiroko Fujimura
1Department of Molecular Pathology, Tohoku University Graduate School of Medicine, Sendai, Japan.
Abstract:
Although gemcitabine is the most effective chemotherapeutic agent against pancreatic cancer, a growing concern is that a substantial number of patients acquire gemcitabine chemoresistance. To elucidate the mechanisms of acquisition of gemcitabine resistance, we developed gemcitabine-resistant cell lines from six human cancer cell lines; three pancreatic, one gastric, one colon, and one bile duct cancer. We first analyzed gemcitabine uptake using three paired parental and gemcitabine resistant pancreatic cancer cell lines (PK-1 and RPK-1, PK-9 and RPK-9, PK-59 and RPK-59) and found that uptake of gemcitabine was rapid. However, no DNA damage was induced in resistant cells. We further examined the microarray-based expression profiles of the cells to identify genes associated with gemcitabine resistance and found a remarkable reduction in the expression of deoxycytidine kinase (DCK). DCK is a key enzyme that activates gemcitabine by phosphorylation. Genetic alterations and expression of DCK were studied in these paired parental and derived gemcitabine-resistant cell lines, and inactivating mutations were found only in gemcitabine-resistant cell lines. Furthermore, siRNA-mediated knockdown of DCK in the parental cell lines yielded gemcitabine resistance, and introduction of DCK into gemcitabine-resistant cell lines invariably restored gemcitabine sensitivities. Mutation analyses were expanded to three other different paired cell lines, DLD-1 and RDLD-1 (colon cancer cell line), MKN-28 and RMKN-28 (gastric cancer cell line), and TFK-1 and RTFK -1 (cholangiocarcinoma cell line). We found inactivating mutations in RDLD-1 and RTFK-1 and decreased expression of DCK in RMKN-28. These results indicate that the inactivation of DCK is one of the crucial mechanisms in acquisition of gemcitabine resistance.
Insights
Gemcitabine resistance in cancer is often due to the inactivation of deoxycytidine kinase (DCK). Restoring DCK function can re-sensitize resistant cells to gemcitabine chemotherapy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Chemotherapy
Background:
- Gemcitabine is a primary chemotherapy for pancreatic cancer.
- Acquired gemcitabine chemoresistance is a significant clinical challenge.
- Understanding resistance mechanisms is crucial for improving cancer treatment.
Purpose of the Study:
- To investigate the molecular mechanisms underlying gemcitabine resistance in various cancer types.
- To identify key genetic factors contributing to gemcitabine chemoresistance.
Main Methods:
- Development of gemcitabine-resistant cell lines from pancreatic, gastric, colon, and bile duct cancers.
- Analysis of gemcitabine uptake and DNA damage induction.
- Microarray-based gene expression profiling.
- Mutation analysis and gene silencing (siRNA) of deoxycytidine kinase (DCK).
Main Results:
- Gemcitabine uptake was rapid, but resistant cells showed no DNA damage.
- A significant reduction in deoxycytidine kinase (DCK) expression was observed in resistant cells.
- Inactivating mutations in DCK were identified in resistant cell lines.
- DCK knockdown induced resistance, while DCK reintroduction restored sensitivity.
Conclusions:
- Inactivation of deoxycytidine kinase (DCK) is a critical mechanism for gemcitabine resistance.
- DCK plays a vital role in gemcitabine activation and efficacy.
- Targeting DCK may offer strategies to overcome gemcitabine resistance in cancer therapy.
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