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Identification of Pharmacodynamic Transcript Biomarkers in Response to FGFR Inhibition by AZD4547
Oona Delpuech1, Claire Rooney2, Lorraine Mooney3
1AstraZeneca Pharmaceutical, Oncology iMed, CRUK-CI, Li Ka Shing Centre, Cambridge, United Kingdom. oona.delpuech@astrazenca.com.
Abstract:
The challenge of developing effective pharmacodynamic biomarkers for preclinical and clinical testing of FGFR signaling inhibition is significant. Assays that rely on the measurement of phospho-protein epitopes can be limited by the availability of effective antibody detection reagents. Transcript profiling enables accurate quantification of many biomarkers and provides a broader representation of pathway modulation. To identify dynamic transcript biomarkers of FGFR signaling inhibition by AZD4547, a potent inhibitor of FGF receptors 1, 2, and 3, a gene expression profiling study was performed in FGFR2-amplified, drug-sensitive tumor cell lines. Consistent with known signaling pathways activated by FGFR, we identified transcript biomarkers downstream of the RAS-MAPK and PI3K/AKT pathways. Using different tumor cell lines in vitro and xenografts in vivo, we confirmed that some of these transcript biomarkers (DUSP6, ETV5, YPEL2) were modulated downstream of oncogenic FGFR1, 2, 3, whereas others showed selective modulation only by FGFR2 signaling (EGR1). These transcripts showed consistent time-dependent modulation, corresponding to the plasma exposure of AZD4547 and inhibition of phosphorylation of the downstream signaling molecules FRS2 or ERK. Combination of FGFR and AKT inhibition in an FGFR2-mutated endometrial cancer xenograft model enhanced modulation of transcript biomarkers from the PI3K/AKT pathway and tumor growth inhibition. These biomarkers were detected on the clinically validated nanoString platform. Taken together, these data identified novel dynamic transcript biomarkers of FGFR inhibition that were validated in a number of in vivo models, and which are more robustly modulated by FGFR inhibition than some conventional downstream signaling protein biomarkers. Mol Cancer Ther; 15(11); 2802-13. ©2016 AACR.
Insights
Developing new transcript biomarkers for FGFR signaling inhibition is crucial. These novel biomarkers, identified via gene expression profiling, offer a more robust measure of pathway modulation than traditional protein assays.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Developing pharmacodynamic biomarkers for fibroblast growth factor receptor (FGFR) signaling inhibition is challenging.
- Phospho-protein assays are limited by antibody availability, necessitating alternative methods.
- Transcript profiling offers a broader and more accurate quantification of pathway modulation.
Purpose of the Study:
- To identify dynamic transcript biomarkers of FGFR signaling inhibition using AZD4547.
- To validate these biomarkers in various preclinical models.
- To assess the potential of combining FGFR and AKT inhibition.
Main Methods:
- Gene expression profiling in FGFR2-amplified cell lines treated with AZD4547.
- In vitro and in vivo validation using cell lines and xenografts.
- Detection of biomarkers on the nanoString platform.
Main Results:
- Identified transcript biomarkers downstream of RAS-MAPK and PI3K/AKT pathways.
- Confirmed modulation of DUSP6, ETV5, YPEL2, and EGR1 by FGFR signaling.
- Demonstrated enhanced biomarker modulation and tumor growth inhibition with combination therapy.
Conclusions:
- Novel dynamic transcript biomarkers for FGFR inhibition were identified and validated.
- Transcript biomarkers provide a more robust measure of FGFR inhibition compared to protein biomarkers.
- Combination therapy shows promise for enhanced therapeutic effects.
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