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Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
Activation of the integrated stress response is a vulnerability for multidrug-resistant FBXW7-deficient cells
Laura Sanchez-Burgos1, Belén Navarro-González1, Santiago García-Martín2
1Genomic Instability Group, Spanish National Cancer Research Centre (CNIO), Madrid, Spain.
Abstract:
FBXW7 is one of the most frequently mutated tumor suppressors, deficiency of which has been associated with resistance to some anticancer therapies. Through bioinformatics and genome-wide CRISPR screens, we here reveal that FBXW7 deficiency leads to multidrug resistance (MDR). Proteomic analyses found an upregulation of mitochondrial factors as a hallmark of FBXW7 deficiency, which has been previously linked to chemotherapy resistance. Despite this increased expression of mitochondrial factors, functional analyses revealed that mitochondria are under stress, and genetic or chemical targeting of mitochondria is preferentially toxic for FBXW7-deficient cells. Mechanistically, the toxicity of therapies targeting mitochondrial translation such as the antibiotic tigecycline relates to the activation of the integrated stress response (ISR) in a GCN2 kinase-dependent manner. Furthermore, the discovery of additional drugs that are toxic for FBXW7-deficient cells showed that all of them unexpectedly activate a GCN2-dependent ISR regardless of their accepted mechanism of action. Our study reveals that while one of the most frequent mutations in cancer reduces the sensitivity to the vast majority of available therapies, it renders cells vulnerable to ISR-activating drugs.
Insights
FBXW7 tumor suppressor deficiency causes multidrug resistance and mitochondrial stress. Targeting the integrated stress response (ISR) with specific drugs offers a new therapeutic vulnerability for FBXW7-deficient cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- FBXW7 is a frequently mutated tumor suppressor linked to anticancer therapy resistance.
- FBXW7 deficiency is associated with multidrug resistance (MDR).
Purpose of the Study:
- To investigate the mechanisms by which FBXW7 deficiency leads to MDR.
- To identify therapeutic vulnerabilities in FBXW7-deficient cancer cells.
Main Methods:
- Bioinformatics and genome-wide CRISPR screens were employed.
- Proteomic analyses identified mitochondrial factor upregulation.
- Functional assays assessed mitochondrial stress and drug sensitivity.
- Integrated stress response (ISR) activation was analyzed.
Main Results:
- FBXW7 deficiency results in multidrug resistance (MDR) and mitochondrial stress.
- FBXW7-deficient cells are preferentially sensitive to mitochondrial-targeting therapies.
- Toxicity of these therapies is mediated by GCN2 kinase-dependent ISR activation.
- Numerous drugs, irrespective of their known mechanism, activate a GCN2-dependent ISR in FBXW7-deficient cells.
Conclusions:
- FBXW7 mutations confer resistance to many therapies but create a vulnerability to ISR-activating drugs.
- Targeting the integrated stress response (ISR) presents a potential therapeutic strategy for FBXW7-deficient cancers.
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