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The Co-mutational Spectrum Determines the Therapeutic Response in Murine FGFR2 Fusion-Driven Cholangiocarcinoma
Gajanan Kendre1, Silke Marhenke1, Georgina Lorz1
1Department of Gastroenterology, Hepatology and Endocrinology, Hannover Medical School, Hannover, Germany.
Background And Aims:
Intrahepatic cholangiocarcinoma (ICC) is the second most common primary liver cancer and a highly lethal malignancy. Chemotherapeutic options are limited, but a considerable subset of patients harbors genetic lesions for which targeted agents exist. Fibroblast growth factor receptor 2 (FGFR2) fusions belong to the most frequent and therapeutically relevant alterations in ICC, and the first FGFR inhibitor was recently approved for the treatment of patients with progressed, fusion-positive ICC. Response rates of up to 35% indicate that FGFR-targeted therapies are beneficial in many but not all patients. Thus far, no established biomarkers exist that predict resistance or response to FGFR-targeted therapies in patients with ICC.
Approach And Results:
In this study, we use an autochthonous murine model of ICC to demonstrate that FGFR2 fusions are potent drivers of malignant transformation. Furthermore, we provide preclinical evidence that the co-mutational spectrum acts not only as an accelerator of tumor development, but also modifies the response to targeted FGFR inhibitors. Using pharmacologic approaches and RNA-interference technology, we delineate that Kirsten rat sarcoma oncogene (KRAS)-activated mitogen-activated protein kinase signaling causes primary resistance to FGFR inhibitors in FGFR2 fusion-positive ICC. The translational relevance is supported by the observation that a subset of human FGFR2 fusion patients exhibits transcriptome profiles reminiscent of KRAS mutant ICC. Moreover, we demonstrate that combination therapy has the potential to overcome primary resistance and to sensitize tumors to FGFR inhibition.
Conclusions:
Our work highlights the importance of the co-mutational spectrum as a significant modifier of response in tumors that harbor potent oncogenic drivers. A better understanding of the genetic underpinnings of resistance will be pivotal to improve biomarker-guided patient selection and to design clinically relevant combination strategies.
Insights
Fibroblast growth factor receptor 2 (FGFR2) fusions drive intrahepatic cholangiocarcinoma (ICC). Co-mutations, like Kirsten rat sarcoma oncogene (KRAS) activation, cause resistance to FGFR inhibitors, suggesting combination therapies may improve outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Intrahepatic cholangiocarcinoma (ICC) is a lethal liver cancer with limited treatment options.
- Fibroblast growth factor receptor 2 (FGFR2) fusions are common and targetable alterations in ICC.
- Current FGFR inhibitors show limited response rates, and biomarkers for resistance are lacking.
Purpose of the Study:
- To investigate the role of FGFR2 fusions in ICC development and their response to targeted therapy.
- To identify genetic factors influencing resistance to FGFR inhibitors in ICC.
- To explore combination therapy strategies for overcoming resistance.
Main Methods:
- Utilized an autochthonous murine model of ICC.
- Employed pharmacologic approaches and RNA-interference technology.
- Analyzed transcriptome profiles of human ICC patient samples.
Main Results:
- FGFR2 fusions are potent drivers of ICC.
- Kirsten rat sarcoma oncogene (KRAS)-activated mitogen-activated protein kinase signaling confers primary resistance to FGFR inhibitors.
- Combination therapy demonstrated potential to overcome resistance and sensitize tumors.
Conclusions:
- The co-mutational spectrum significantly modifies tumor response to targeted therapies.
- Understanding resistance mechanisms is crucial for improving patient selection and combination strategies.
- Targeting FGFR2 fusions in ICC requires consideration of co-occurring mutations for optimal efficacy.
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