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Overcoming Resistance to Anti-EGFR Therapy in Colorectal Cancer
Rodrigo Dienstmann1, Ramon Salazar1, Josep Tabernero1
1From the Sage Bionetworks, Fred Hutchinson Cancer Research Center, Seattle, WA; Medical Oncology Department, Vall d'Hebron University Hospital and Institute of Oncology, Universitat Autònoma de Barcelona, Barcelona, Spain; Department of Medical Oncology, Translational Research Laboratory, Catalan Institute of Oncology, Bellvitge Biomedical Research Institute, L'Hospitalet de Llobregat, Barcelona, Spain.
Abstract:
Our understanding of the genetic and nongenetic molecular alterations associated with anti-epidermal growth factor receptor (EGFR) therapy resistance in colorectal cancer (CRC) has markedly expanded in recent years. Mutations in RAS genes (KRAS/NRAS exons 2, 3, or 4) predict a lack of clinical benefit when anti-EGFR monoclonal antibodies (mAbs) are added to chemotherapy. Genetic events in additional nodes of the mitogen-activated protein kinase (MAPK)-phosphoinositide 3-kinase (PI3K) pathways that bypass EGFR signaling, such as BRAF or PIK3CA mutations or KRAS, ERBB2, or MET amplifications, also may confer resistance to cetuximab or panitumumab. Polymorphisms that block antibody binding as a result of EGFR extracellular domain mutations have been reported. Nongenetic mechanisms, including compensatory activation of receptor tyrosine kinases HER3 and MET, together with high expression of the ligands amphiregulin, transforming growth factor alpha heregulin, and hepatocyte growth factor in the tumor microenvironment also are thought to be involved in resistance. In one-third of the samples, more than one genetic event can be found, and nongenetic events most likely coexist with gene alterations. Furthermore, activation of a gene expression signature of epithelial-mesenchymal transition has been associated with reduced cellular dependence on EGFR signaling. Collectively, this body of work provides convincing evidence that the molecular heterogeneity of CRC plays an important role in the context of resistance to anti-EGFR therapy. Herein, we discuss how this knowledge has been translated into drug development strategies to overcome primary and acquired anti-EGFR resistance, with rational combinations of targeted agents in genomically selected populations, second-generation EGFR inhibitors, and other agents expected to boost the immune response at the tumor site.
Insights
Molecular heterogeneity in colorectal cancer (CRC) drives resistance to anti-epidermal growth factor receptor (EGFR) therapies. Understanding genetic and nongenetic alterations is key to developing strategies to overcome this resistance.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Resistance to anti-epidermal growth factor receptor (EGFR) therapy is a significant challenge in colorectal cancer (CRC) treatment.
- Recent advancements have expanded our understanding of the genetic and nongenetic molecular alterations contributing to this resistance.
Purpose of the Study:
- To review the current knowledge on molecular mechanisms of anti-EGFR therapy resistance in CRC.
- To discuss how this knowledge informs drug development strategies to overcome resistance.
Main Methods:
- Literature review of genetic and nongenetic alterations associated with anti-EGFR therapy resistance in CRC.
- Analysis of molecular pathways, including MAPK and PI3K, and their role in resistance.
- Examination of compensatory signaling, tumor microenvironment factors, and epithelial-mesenchymal transition.
Main Results:
- Mutations in RAS genes (KRAS/NRAS) and other pathway alterations (BRAF, PIK3CA, ERBB2, MET) predict lack of benefit from anti-EGFR therapy.
- Nongenetic mechanisms, such as compensatory receptor tyrosine kinase activation and ligand expression, also contribute to resistance.
- Molecular heterogeneity, including coexisting genetic and nongenetic events, is crucial in conferring resistance.
Conclusions:
- The molecular heterogeneity of CRC is a critical factor in resistance to anti-EGFR therapy.
- Knowledge of these alterations guides the development of combination therapies, second-generation inhibitors, and immunotherapies to overcome resistance.
- Genomically selected populations and rational drug combinations are essential for effective treatment strategies.
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