Related Experiment Video
Updated: Dec 31, 2025

Utilizing 18F-FDG PET/CT Imaging and Quantitative Histology to Measure Dynamic Changes in the Glucose Metabolism in Mouse Models of Lung Cancer
Published on: July 21, 2018
Rapid non-uniform adaptation to conformation-specific KRAS(G12C) inhibition
Jenny Y Xue1,2, Yulei Zhao1, Jordan Aronowitz1
1Human Oncology and Pathogenesis Program, Memorial Sloan Kettering Cancer Center, New York, NY, USA.
Abstract:
KRAS GTPases are activated in one-third of cancers, and KRAS(G12C) is one of the most common activating alterations in lung adenocarcinoma1,2. KRAS(G12C) inhibitors3,4 are in phase-I clinical trials and early data show partial responses in nearly half of patients with lung cancer. How cancer cells bypass inhibition to prevent maximal response to therapy is not understood. Because KRAS(G12C) cycles between an active and inactive conformation4-6, and the inhibitors bind only to the latter, we tested whether isogenic cell populations respond in a non-uniform manner by studying the effect of treatment at a single-cell resolution. Here we report that, shortly after treatment, some cancer cells are sequestered in a quiescent state with low KRAS activity, whereas others bypass this effect to resume proliferation. This rapid divergent response occurs because some quiescent cells produce new KRAS(G12C) in response to suppressed mitogen-activated protein kinase output. New KRAS(G12C) is maintained in its active, drug-insensitive state by epidermal growth factor receptor and aurora kinase signalling. Cells without these adaptive changes-or cells in which these changes are pharmacologically inhibited-remain sensitive to drug treatment, because new KRAS(G12C) is either not available or exists in its inactive, drug-sensitive state. The direct targeting of KRAS oncoproteins has been a longstanding objective in precision oncology. Our study uncovers a flexible non-uniform fitness mechanism that enables groups of cells within a population to rapidly bypass the effect of treatment. This adaptive process must be overcome if we are to achieve complete and durable responses in the clinic.
Insights
Cancer cells with KRAS G12C mutations can evade targeted therapies by entering a quiescent state and producing new drug-resistant KRAS G12C. This adaptive mechanism allows some cells to survive and proliferate, hindering treatment effectiveness in lung adenocarcinoma.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- KRAS GTPases are frequently activated in cancers, with KRAS G12C being common in lung adenocarcinoma.
- KRAS G12C inhibitors show promise in early clinical trials but maximal response is often limited.
- Mechanisms by which cancer cells bypass KRAS G12C inhibition are not fully understood.
Purpose of the Study:
- To investigate the non-uniform response of cancer cells to KRAS G12C inhibitors at a single-cell level.
- To elucidate the adaptive mechanisms enabling cancer cells to bypass targeted therapy.
Main Methods:
- Single-cell resolution analysis of isogenic cell populations under KRAS G12C inhibitor treatment.
- Investigation of KRAS activity, cell quiescence, and proliferation dynamics.
- Assessment of the role of epidermal growth factor receptor and aurora kinase signaling in drug resistance.
Main Results:
- Cancer cells exhibit a rapid, divergent response to KRAS G12C inhibitors, with some entering quiescence and others resuming proliferation.
- Quiescent cells can generate new, drug-insensitive KRAS G12C, maintained by EGFR and aurora kinase signaling.
- Inhibition of these adaptive pathways or lack of new KRAS G12C production renders cells sensitive to treatment.
Conclusions:
- Cancer cells employ a flexible, non-uniform fitness mechanism to rapidly bypass KRAS G12C targeted therapy.
- This adaptive resistance necessitates overcoming these mechanisms for durable and complete clinical responses.
- Targeting KRAS oncoproteins remains a critical goal in precision oncology, requiring strategies to counter adaptive resistance.

