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Loss of Keap1 function activates Nrf2 and provides advantages for lung cancer cell growth
Tsutomu Ohta1, Kumiko Iijima, Mamiko Miyamoto
1Center for Medical Genomics, National Cancer Center Research Institute, Tokyo 104-0045, Japan. cota@gan2.res.ncc.go.jp
Abstract:
Oxidative and electrophilic stresses are sensed by Keap1, which activates Nrf2 to achieve cytoprotection by regulating the expression of drug-metabolizing and antioxidative stress enzymes/proteins. Because oxidative and electrophilic stresses cause many diseases, including cancer, we hypothesized that an abnormality in the Nrf2-Keap1 system may facilitate the growth of cancer cells. We sequenced the KEAP1 gene of 65 Japanese patients with lung cancer and identified five nonsynonymous somatic mutations at a frequency of 8%. We also identified two nonsynonymous somatic KEAP1 gene mutations and two lung cancer cell lines expressing KEAP1 at reduced levels. In lung cancer cells, low Keap1 activity (due to mutations or low-level expression) led to nuclear localization and constitutive activation of Nrf2. The latter resulted in constitutive expression of cytoprotective genes encoding multidrug resistance pumps, phase II detoxifying enzymes, and antioxidative stress enzymes/proteins. Up-regulation of these target genes in lung cancer cells led to cisplatin resistance. Nrf2 activation also stimulated growth of lung cancer-derived cell lines expressing KEAP1 at low levels and in mutant cell lines and in Keap1-null mouse embryonic fibroblasts under homeostatic conditions. Thus, inhibition of NRF2 may provide new therapeutic approaches in lung cancers with activation of Nrf2.
Insights
Mutations in the Keap1 gene activate Nrf2, promoting lung cancer growth and cisplatin resistance. Inhibiting Nrf2 may offer new lung cancer therapies.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- The Keap1-Nrf2 pathway regulates cellular defense against oxidative and electrophilic stresses.
- Dysregulation of this pathway is implicated in various diseases, including cancer.
Purpose of the Study:
- To investigate the role of KEAP1 gene abnormalities in lung cancer development and progression.
- To explore the therapeutic potential of targeting the Nrf2 pathway in lung cancer.
Main Methods:
- Somatic mutation analysis of the KEAP1 gene in lung cancer patients.
- Assessment of KEAP1 expression levels in lung cancer cell lines.
- Evaluation of Nrf2 activation and its downstream effects on gene expression and cell growth.
Main Results:
- KEAP1 somatic mutations were identified in 8% of Japanese lung cancer patients.
- Reduced Keap1 activity led to constitutive Nrf2 activation in lung cancer cells.
- Nrf2 activation resulted in the upregulation of cytoprotective genes, conferring cisplatin resistance and promoting cell growth.
Conclusions:
- Abnormalities in the Nrf2-Keap1 system contribute to lung cancer growth and chemoresistance.
- Targeting Nrf2 presents a promising therapeutic strategy for lung cancers with Nrf2 pathway activation.
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