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ERBB3 and IGF1R Signaling Are Required for Nrf2-Dependent Growth in KEAP1-Mutant Lung Cancer
Steffan Vartanian1, James Lee1, Christiaan Klijn2
1Department of Discovery Oncology.
Abstract:
Mutations in KEAP1 and NFE2L2 (encoding the protein Nrf2) are prevalent in both adeno and squamous subtypes of non-small cell lung cancer, as well as additional tumor indications. The consequence of these mutations is stabilized Nrf2 and chronic induction of a battery of Nrf2 target genes. We show that knockdown of Nrf2 caused modest growth inhibition of cells growing in two-dimension, which was more pronounced in cell lines expressing mutant KEAP1. In contrast, Nrf2 knockdown caused almost complete regression of established KEAP1-mutant tumors in mice, with little effect on wild-type (WT) KEAP1 tumors. The strong dependency on Nrf2 could be recapitulated in certain anchorage-independent growth environments and was not prevented by excess extracellular glutathione. A CRISPR screen was used to investigate the mechanism(s) underlying this dependence. We identified alternative pathways critical for Nrf2-dependent growth in KEAP1-mutant cell lines, including the redox proteins thioredoxin and peroxiredoxin, as well as the growth factor receptors IGF1R and ERBB3. IGF1R inhibition was effective in KEAP1-mutant cells compared with WT, especially under conditions of anchorage-independent growth. These results point to addiction of KEAP1-mutant tumor cells to Nrf2 and suggest that inhibition of Nrf2 or discrete druggable Nrf2 target genes such as IGF1R could be an effective therapeutic strategy for disabling these tumors. SIGNIFICANCE: This study identifies pathways activated by Nrf2 that are important for the proliferation and tumorigenicity of KEAP1-mutant non-small cell lung cancer.
Insights
KEAP1-mutant lung cancer cells depend on Nrf2 for growth. Inhibiting Nrf2 or its target IGF1R effectively shrinks tumors, offering a promising therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Mutations in KEAP1 and NFE2L2 (Nrf2) are common in non-small cell lung cancer (NSCLC).
- These mutations lead to stabilized Nrf2 and increased expression of Nrf2 target genes.
- Nrf2 plays a critical role in cellular defense against oxidative stress.
Purpose of the Study:
- To investigate the functional dependency of KEAP1-mutant cancer cells on Nrf2.
- To identify molecular mechanisms and pathways driving Nrf2-dependent tumor growth.
- To evaluate therapeutic strategies targeting Nrf2 or its downstream effectors.
Main Methods:
- Utilized Nrf2 knockdown experiments in 2D and 3D cell cultures and in vivo tumor models.
- Employed CRISPR screening to identify genetic dependencies.
- Investigated the role of specific redox proteins and growth factor receptors.
Main Results:
- Nrf2 knockdown modestly inhibited 2D cell growth but caused significant regression of established KEAP1-mutant tumors in mice.
- KEAP1-mutant cells showed a strong dependency on Nrf2, particularly in anchorage-independent growth conditions.
- CRISPR screens identified thioredoxin, peroxiredoxin, IGF1R, and ERBB3 as critical Nrf2-dependent pathways.
- IGF1R inhibition demonstrated efficacy in KEAP1-mutant cells, especially under anchorage-independent growth.
Conclusions:
- KEAP1-mutant cancer cells exhibit addiction to Nrf2.
- Targeting Nrf2 or its downstream genes like IGF1R presents a viable therapeutic strategy for KEAP1-mutant NSCLC.
- Understanding Nrf2-activated pathways is crucial for developing novel cancer treatments.
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