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Updated: Jan 21, 2026

An Orthotopic Resectional Mouse Model of Pancreatic Cancer
Published on: September 24, 2020
KRAS pathway expression changes in pancreatic cancer models by conventional and experimental taxanes
M Oliverius1,2, D Flasarova3, B Mohelnikova-Duchonova3,4
1Department of Surgery, Faculty Hospital Kralovske Vinohrady and Third Faculty of Medicine, Charles University, Prague, Czech Republic.
Abstract:
The KRAS signalling pathway is pivotal for pancreatic ductal adenocarcinoma (PDAC) development. After the failure of most conventional cytotoxic and targeted therapeutics tested so far, the combination of taxane nab-paclitaxel (Abraxane) with gemcitabine recently demonstrated promising improvements in the survival of PDAC patients. This study aimed to explore interactions of conventional paclitaxel and experimental taxane SB-T-1216 with the KRAS signalling pathway expression in in vivo and in vitro PDAC models in order to decipher potential predictive biomarkers or targets for future individualised therapy. Mouse PDAC PaCa-44 xenograft model was used for evaluation of changes in transcript and protein levels of the KRAS signalling pathway caused by administration of experimental taxane SB-T-1216 in vivo. Subsequently, KRAS wild-type (BxPc-3) and mutated (MiaPaCa-2 and PaCa-44) cell line models were treated with paclitaxel to verify dysregulation of the KRAS signalling pathway gene expression profile in vitro and investigate the role of KRAS mutation status. By comparing the gene expression profiles, this study observed for the first time that in vitro cell models differ in the basal transcriptional profile of the KRAS signalling pathway, but there were no differences between KRAS mutated and wild-type cells in sensitivity to taxanes. Generally, the taxane administration caused a downregulation of the KRAS signalling pathway both in vitro and in vivo, but this effect was not dependent on the KRAS mutation status. In conclusion, putative biomarkers for prediction of taxane activity or targets for stimulation of taxane anticancer effects were not discovered by the KRAS signalling pathway profiling in various PDAC models.
Insights
Taxanes, including paclitaxel, generally downregulate the KRAS pathway in pancreatic ductal adenocarcinoma models. However, this study found no KRAS mutation-specific sensitivity or predictive biomarkers for taxane therapy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Pancreatic ductal adenocarcinoma (PDAC) is driven by the KRAS signaling pathway.
- Nab-paclitaxel combined with gemcitabine shows improved survival in PDAC patients.
- Limited success of conventional therapies necessitates exploring novel therapeutic strategies.
Purpose of the Study:
- To investigate the interaction between taxanes (paclitaxel and SB-T-1216) and the KRAS signaling pathway in PDAC.
- To identify potential predictive biomarkers or therapeutic targets for individualized PDAC therapy.
- To evaluate the role of KRAS mutation status in taxane response.
Main Methods:
- Utilized a mouse PDAC xenograft model (PaCa-44) to assess in vivo effects of SB-T-1216 on KRAS pathway expression.
- Employed in vitro cell line models (KRAS wild-type BxPc-3 and KRAS-mutated MiaPaCa-2, PaCa-44) treated with paclitaxel.
- Analyzed transcript and protein levels of the KRAS signaling pathway and compared gene expression profiles.
Main Results:
- Observed distinct basal transcriptional profiles of the KRAS pathway in different in vitro PDAC models.
- Found no significant difference in taxane sensitivity between KRAS-mutated and wild-type cells.
- Demonstrated that taxane administration generally downregulates the KRAS signaling pathway irrespective of KRAS mutation status.
Conclusions:
- KRAS pathway profiling did not identify predictive biomarkers for taxane activity in PDAC.
- No specific targets were discovered for enhancing taxane anticancer effects through KRAS pathway modulation.
- The study did not find KRAS mutation status to be a determinant of taxane response in the investigated PDAC models.
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