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Updated: Feb 1, 2026

An Orthotopic Resectional Mouse Model of Pancreatic Cancer
Published on: September 24, 2020
Coordinately Targeting Cell-Cycle Checkpoint Functions in Integrated Models of Pancreatic Cancer
Sejin Chung1,2, Paris Vail3, Agnieszka K Witkiewicz4,5
1Center for Personalized Medicine, Roswell Park Cancer Institute, Buffalo, New York.
Purpose:
Cancer cells often have deficiencies in cell-cycle control mechanisms and could be dependent on specific cell-cycle checkpoints to maintain viability. Because of the documented role of KRAS in driving replication stress, we targeted the checkpoint governing DNA replication using CHK1 kinase inhibitors in pancreatic ductal adenocarcinoma (PDAC) models and examined mechanisms of resistance.
Experimental Design:
Single-agent efficacy of CHK1 inhibition was investigated in established and primary PDAC lines. Drug screening was performed to identify cooperative agents. In vitro and in vivo studies were employed to interrogate combination treatment efficacy and mechanisms of resistance.
Results:
Many PDAC models evade single-agent inhibition through mechanisms that allow S-phase progression with CHK1 inhibited. Gene expression analysis revealed FOXM1 as a potential marker of CHK1 sensitivity and defined a form of pancreatic cancer with poor prognosis. Drug screen analysis identified WEE1 as a cooperative agent with CHK1 and was effective in cell culture. In vivo experiments validated the combination efficacy; however, resistance could evolve. Resistance was due to selection of a stable subclone from the original PDX tumor, which harbored high baseline replication stress. In vitro analysis revealed that gemcitabine could eliminate viability in the resistant models. The triplet regimen of gemcitabine, CHK1, and WEE1 inhibition provided strong disease control in all xenograft models interrogated.
Conclusions:
These results demonstrate the therapeutic resiliency of pancreatic cancer and indicate that coordinately targeting cell-cycle checkpoints in concert with chemotherapy could be particularly efficacious.
Insights
Pancreatic cancer cells can resist CHK1 inhibitors, but combining gemcitabine, CHK1, and WEE1 inhibitors effectively controls tumor growth by targeting cell-cycle checkpoints.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Cell Biology
Background:
- Cancer cells, particularly pancreatic ductal adenocarcinoma (PDAC), often exhibit cell-cycle control deficiencies, creating dependencies on specific checkpoints for survival.
- KRAS mutations are known to induce replication stress, making cell-cycle checkpoints crucial targets in PDAC treatment strategies.
Purpose of the Study:
- To investigate the efficacy of targeting the DNA replication checkpoint using CHK1 kinase inhibitors in pancreatic ductal adenocarcinoma (PDAC) models.
- To identify mechanisms of resistance to CHK1 inhibition and explore potential combination therapies for enhanced treatment outcomes.
Main Methods:
- Evaluated single-agent efficacy of CHK1 inhibition in established and primary PDAC cell lines.
- Conducted drug screening to identify cooperative agents and utilized in vitro and in vivo studies to assess combination treatment efficacy and resistance mechanisms.
Main Results:
- Many PDAC models developed resistance to single-agent CHK1 inhibition by allowing S-phase progression.
- FOXM1 was identified as a potential marker for CHK1 sensitivity. WEE1 was found to be a cooperative agent with CHK1.
- A triplet regimen of gemcitabine, CHK1, and WEE1 inhibition demonstrated strong disease control in xenograft models, overcoming resistance mechanisms.
Conclusions:
- Pancreatic cancer exhibits significant therapeutic resilience, necessitating multifaceted treatment approaches.
- Coordinately targeting cell-cycle checkpoints with chemotherapy presents a promising strategy for improving PDAC treatment efficacy.
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