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Multianimal Magnetic Resonance Imaging for Tumor Measurements in Pancreatic Cancer Mouse Models
Published on: February 3, 2026
The MEK1/2 Inhibitor Pimasertib Enhances Gemcitabine Efficacy in Pancreatic Cancer Models by Altering Ribonucleotide
Francesca Vena1, Eleonora Li Causi2, Manuel Rodriguez-Justo3
1Cancer Research UK Drug-DNA Interactions Research Group, UCL Cancer Institute, University College London, London, United Kingdom.
Purpose:
Gemcitabine, a nucleoside analogue, is an important treatment for locally advanced and metastatic pancreatic ductal adenocarcinoma (PDAC) but provides only modest survival benefit. Targeting downstream effectors of the RAS/ERK signaling pathway by direct inhibition of MEK1/2 proteins is a promising therapeutic strategy, as aberrant activation of this pathway occurs frequently in PDAC. In this study, the ability of pimasertib, a selective allosteric MEK1/2 inhibitor, to enhance gemcitabine efficacy was tested and the molecular mechanism of their interaction was investigated.
Experimental Design:
Cell survival and apoptosis were assessed by MTT and Caspase 3/7 Glo assays in human pancreatic cancer cell lines. Protein expression was detected by immunoblotting. The in vivo sensitivity of gemcitabine with pimasertib was evaluated in an orthotopic model of pancreatic tumor.
Results:
Synergistic activity was observed when gemcitabine was combined sequentially with pimasertib, in human pancreatic cancer cells. In particular, pimasertib reduced ribonucleotide reductase subunit 1 (RRM1) protein, and this was associated with sensitivity to gemcitabine. Pretreatment with MG132 impaired reduction of RRM1 protein induced by pimasertib, suggesting that RRM1 is degraded posttranslationally. Immunoprecipitation indicated enhanced MDM2-mediated polyubiquitination of RRM1 through Lys-48-mediated linkage following pimasertib treatment, an effect mediated, in part, by AKT. Finally, the combination treatment with pimasertib and gemcitabine caused significant tumor growth delays in an orthotopic pancreatic cancer model, with RRM1 downregulation in pimasertib-treated mice.
Conclusions:
These results confirm an important role of RRM1 in gemcitabine response and indicate MEK as a potential target to sensitize gemcitabine therapy for PDAC. Clin Cancer Res; 21(24); 5563-77. ©2015 AACR.
Insights
Combining gemcitabine with pimasertib, a MEK inhibitor, synergistically enhances pancreatic cancer treatment by reducing RRM1 protein levels. This combination therapy shows promise for improving outcomes in pancreatic ductal adenocarcinoma (PDAC).
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling
Background:
- Gemcitabine offers modest survival benefits for pancreatic ductal adenocarcinoma (PDAC).
- RAS/ERK pathway activation is common in PDAC, making MEK inhibitors a potential therapeutic strategy.
- Pimasertib is a selective allosteric MEK1/2 inhibitor.
Purpose of the Study:
- To evaluate if pimasertib enhances gemcitabine efficacy in PDAC.
- To investigate the molecular mechanisms underlying the interaction between pimasertib and gemcitabine.
Main Methods:
- Assessed cell survival and apoptosis using MTT and Caspase 3/7 Glo assays.
- Detected protein expression via immunoblotting and immunoprecipitation.
- Evaluated in vivo efficacy in an orthotopic pancreatic tumor model.
Main Results:
- Sequential combination of gemcitabine and pimasertib showed synergistic activity in human pancreatic cancer cells.
- Pimasertib reduced ribonucleotide reductase subunit 1 (RRM1) protein, correlating with gemcitabine sensitivity.
- Pimasertib induced RRM1 degradation via MDM2-mediated polyubiquitination, partly mediated by AKT.
- Combination treatment significantly delayed tumor growth in an orthotopic model, with observed RRM1 downregulation.
Conclusions:
- RRM1 plays a critical role in gemcitabine response.
- Targeting MEK with pimasertib can sensitize gemcitabine therapy for PDAC.
- This combination strategy holds potential for improved PDAC treatment.
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