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Kinome rewiring during acquired drug resistance in neuroendocrine neoplasms
Corinne Gérard1, Marie Lagarde1, Flora Poizat2
1Aix Marseille Univ, INSERM, MMG (U1251), Marseille Medical Genetics, Marseille, France.
Abstract:
Although there is evidence of a significant rise of neuroendocrine neoplasms (NENs) incidence, current treatments are largely insufficient due to somewhat poor knowledge of these tumours. Despite showing differentiated features, NENs exhibit therapeutic resistance to most common treatments, similar to other cancers in many instances. Molecular mechanisms responsible for this resistance phenomenon are badly understood. We aimed at identifying signalling partners responsible of acquired resistance to treatments in order to develop novel therapeutic strategies. We engineered QGP-1 cells resistant to current leading treatments, the chemotherapeutic agent oxaliplatin and the mTor inhibitor everolimus. Cells were chronically exposed to the drugs and assessed for acquired resistance by viability assay. We used microarray-based kinomics to obtain highthroughput kinase activity profiles from drug sensitive vs resistant cells and identified 'hit' kinases hyperactivated in drug-resistant cells, including kinases from FGFR family, cyclin-dependant kinases and PKCs in oxaliplatin-resistant (R-Ox) QGP-1 cells. We then validated these 'hit' kinases and observed that ERK signalling is specifically enhanced in QGP-1 R-Ox cells. Finally, we assessed drug-resistant cells sensitivity to pharmacological inhibition of 'hit' kinases or their signalling partners. We found that FGFR inhibition markedly decreased ERK signalling and cell viability in QGP-1 R-Ox cells. These results suggest that the FGFR/ERK axis is hyperactivated in response to oxaliplatin-based chemotherapeutic strategy. Thus, this sensitive approach, based on the study of kinome activity, allows identifying potential candidates involved in drug resistance in NENs and may be used to broadly investigate markers of NENs therapeutic response.
Insights
Researchers identified the FGFR/ERK signaling pathway as a key driver of acquired resistance to oxaliplatin chemotherapy in neuroendocrine neoplasms (NENs). Targeting this pathway offers a potential new therapeutic strategy for NENs.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Neuroendocrine neoplasms (NENs) incidence is rising, yet effective treatments remain limited due to poor understanding of their resistance mechanisms.
- NENs display therapeutic resistance to common treatments, similar to other cancers, with underlying molecular drivers poorly understood.
Purpose of the Study:
- To identify signaling partners responsible for acquired treatment resistance in NENs.
- To develop novel therapeutic strategies by understanding resistance mechanisms.
Main Methods:
- Engineered drug-resistant QGP-1 cells (oxaliplatin and everolimus).
- Utilized microarray-based kinomics to profile kinase activity in sensitive vs. resistant cells.
- Validated identified 'hit' kinases and assessed drug-resistant cell sensitivity to pharmacological inhibition.
Main Results:
- Identified hyperactivated kinases in drug-resistant cells, including FGFR family, CDKs, and PKCs.
- Observed specifically enhanced ERK signaling in oxaliplatin-resistant (R-Ox) QGP-1 cells.
- Demonstrated that FGFR inhibition reduced ERK signaling and cell viability in R-Ox cells.
Conclusions:
- The FGFR/ERK axis is hyperactivated in response to oxaliplatin chemotherapy in NENs.
- Kinome activity profiling is a sensitive approach to identify drug resistance markers in NENs.
- Targeting the FGFR/ERK pathway presents a potential therapeutic strategy for overcoming oxaliplatin resistance in NENs.
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