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A systems mechanism for KRAS mutant allele-specific responses to targeted therapy
Thomas McFall1, Jolene K Diedrich2,3, Meron Mengistu4
1Integrative Biology Laboratory, Salk Institute for Biological Studies, La Jolla, CA 92037, USA.
Abstract:
Cancer treatment decisions are increasingly guided by which specific genes are mutated within each patient's tumor. For example, agents inhibiting the epidermal growth factor receptor (EGFR) benefit many colorectal cancer (CRC) patients, with the general exception of those whose tumor includes a KRAS mutation. However, among the various KRAS mutations, that which encodes the G13D mutant protein (KRASG13D) behaves differently; for unknown reasons, KRASG13D CRC patients benefit from the EGFR-blocking antibody cetuximab. Controversy surrounds this observation, because it contradicts the well-established mechanisms of EGFR signaling with regard to RAS mutations. Here, we identified a systems-level, mechanistic explanation for why KRASG13D cancers respond to EGFR inhibition. A computational model of RAS signaling revealed that the biophysical differences between the three most common KRAS mutants were sufficient to generate different sensitivities to EGFR inhibition. Integrated computation with experimentation then revealed a nonintuitive, mutant-specific dependency of wild-type RAS activation by EGFR that is determined by the interaction strength between KRAS and the tumor suppressor neurofibromin (NF1). KRAS mutants that strongly interacted with and competitively inhibited NF1 drove wild-type RAS activation in an EGFR-independent manner, whereas KRASG13D weakly interacted with and could not competitively inhibit NF1 and, thus, KRASG13D cells remained dependent on EGFR for wild-type RAS activity. Overall, our work demonstrates how systems approaches enable mechanism-based inference in genomic medicine and can help identify patients for selective therapeutic strategies.
Insights
Colorectal cancer patients with KRAS G13D mutations benefit from EGFR inhibitors due to a unique signaling mechanism. This study explains why KRAS G13D cancers remain dependent on EGFR for activity, unlike other KRAS mutations.
Area of Science:
- Oncology
- Computational Biology
- Genomic Medicine
Background:
- Cancer treatment selection increasingly relies on tumor-specific gene mutations.
- Epidermal growth factor receptor (EGFR) inhibitors benefit many colorectal cancer (CRC) patients, except those with KRAS mutations.
- A specific KRAS mutation, KRAS G13D, paradoxically allows CRC patients to benefit from EGFR inhibitors like cetuximab.
Purpose of the Study:
- To elucidate the mechanistic basis for KRAS G13D colorectal cancer (CRC) patient response to EGFR inhibition.
- To explain the contradictory observation of KRAS G13D CRC benefit from EGFR inhibitors, challenging established signaling pathways.
Main Methods:
- Development of a computational model of RAS signaling to analyze biophysical differences in common KRAS mutants.
- Integration of computational modeling with experimental validation.
- Investigation of the interaction between KRAS, neurofibromin (NF1), and EGFR signaling dependency.
Main Results:
- Biophysical differences among KRAS mutants result in varying sensitivities to EGFR inhibition.
- KRAS G13D exhibits weak interaction with NF1, maintaining EGFR dependency for wild-type RAS activation.
- Other common KRAS mutants strongly interact with NF1, leading to EGFR-independent RAS activation.
Conclusions:
- A systems-level mechanistic explanation for KRAS G13D CRC response to EGFR inhibition has been identified.
- Mutant-specific interactions with NF1 dictate RAS activation pathways and EGFR dependency.
- Systems approaches can identify patient subgroups for targeted therapeutic strategies in genomic medicine.
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