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Published on: July 21, 2018
Diverse alterations associated with resistance to KRAS(G12C) inhibition
Yulei Zhao1, Yonina R Murciano-Goroff2, Jenny Y Xue1,3
1Human Oncology and Pathogenesis Program, Memorial Sloan Kettering Cancer, New York, NY, USA.
Abstract:
Inactive state-selective KRAS(G12C) inhibitors1-8 demonstrate a 30-40% response rate and result in approximately 6-month median progression-free survival in patients with lung cancer9. The genetic basis for resistance to these first-in-class mutant GTPase inhibitors remains under investigation. Here we evaluated matched pre-treatment and post-treatment specimens from 43 patients treated with the KRAS(G12C) inhibitor sotorasib. Multiple treatment-emergent alterations were observed across 27 patients, including alterations in KRAS, NRAS, BRAF, EGFR, FGFR2, MYC and other genes. In preclinical patient-derived xenograft and cell line models, resistance to KRAS(G12C) inhibition was associated with low allele frequency hotspot mutations in KRAS(G12V or G13D), NRAS(Q61K or G13R), MRAS(Q71R) and/or BRAF(G596R), mirroring observations in patients. Single-cell sequencing in an isogenic lineage identified secondary RAS and/or BRAF mutations in the same cells as KRAS(G12C), where they bypassed inhibition without affecting target inactivation. Genetic or pharmacological targeting of ERK signalling intermediates enhanced the antiproliferative effect of G12C inhibitor treatment in models with acquired RAS or BRAF mutations. Our study thus suggests a heterogenous pattern of resistance with multiple subclonal events emerging during G12C inhibitor treatment. A subset of patients in our cohort acquired oncogenic KRAS, NRAS or BRAF mutations, and resistance in this setting may be delayed by co-targeting of ERK signalling intermediates. These findings merit broader evaluation in prospective clinical trials.
Insights
Resistance to KRAS(G12C) inhibitors in lung cancer can emerge through new KRAS, NRAS, or BRAF mutations. Targeting ERK signaling may overcome this acquired resistance, suggesting combination therapies for improved patient outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- KRAS(G12C) inhibitors show modest efficacy in lung cancer but resistance mechanisms are unclear.
- Understanding resistance is crucial for improving patient outcomes with targeted therapies.
Purpose of the Study:
- To investigate the genetic basis of acquired resistance to KRAS(G12C) inhibitors in lung cancer patients.
- To identify potential strategies to overcome resistance to KRAS(G12C) targeted therapy.
Main Methods:
- Analysis of matched pre-treatment and post-treatment tumor specimens from 43 patients treated with sotorasib.
- Utilized patient-derived xenograft and cell line models for preclinical resistance studies.
- Employed single-cell sequencing to analyze resistance mechanisms at the cellular level.
Main Results:
- Treatment-emergent alterations in KRAS, NRAS, BRAF, and other genes were identified in 27 patients.
- Preclinical models showed resistance associated with secondary RAS and/or BRAF mutations, bypassing KRAS(G12C) inhibition.
- Co-targeting of ERK signaling intermediates enhanced anti-proliferative effects in resistant models.
Conclusions:
- Acquired resistance to KRAS(G12C) inhibitors is driven by diverse genetic alterations, including secondary RAS/BRAF mutations.
- Combination strategies targeting ERK signaling may overcome acquired resistance.
- Further clinical trials are warranted to evaluate these findings in a broader patient population.
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