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Published on: July 21, 2018
The level of oncogenic Ras determines the malignant transformation of Lkb1 mutant tissue in vivo
Briana Rackley1,2, Chang-Soo Seong1, Evan Kiely1,3
1Department of Hematology and Medical Oncology, Emory University School of Medicine, Atlanta, GA, USA.
Abstract:
The genetic and metabolic heterogeneity of RAS-driven cancers has confounded therapeutic strategies in the clinic. To address this, rapid and genetically tractable animal models are needed that recapitulate the heterogeneity of RAS-driven cancers in vivo. Here, we generate a Drosophila melanogaster model of Ras/Lkb1 mutant carcinoma. We show that low-level expression of oncogenic Ras (RasLow) promotes the survival of Lkb1 mutant tissue, but results in autonomous cell cycle arrest and non-autonomous overgrowth of wild-type tissue. In contrast, high-level expression of oncogenic Ras (RasHigh) transforms Lkb1 mutant tissue resulting in lethal malignant tumors. Using simultaneous multiview light-sheet microcopy, we have characterized invasion phenotypes of Ras/Lkb1 tumors in living larvae. Our molecular analysis reveals sustained activation of the AMPK pathway in malignant Ras/Lkb1 tumors, and demonstrate the genetic and pharmacologic dependence of these tumors on CaMK-activated Ampk. We further show that LKB1 mutant human lung adenocarcinoma patients with high levels of oncogenic KRAS exhibit worse overall survival and increased AMPK activation. Our results suggest that high levels of oncogenic KRAS is a driving event in the malignant transformation of LKB1 mutant tissue, and uncovers a vulnerability that may be used to target this aggressive genetic subset of RAS-driven tumors.
Insights
High oncogenic Ras levels drive malignant transformation in LKB1-mutant cancers, revealing a therapeutic vulnerability. This study uses a Drosophila model to uncover AMPK pathway dependence in RAS-driven tumors.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- RAS-driven cancers exhibit heterogeneity, complicating treatment.
- Developing tractable animal models is crucial for studying these cancers.
- LKB1 mutations are implicated in various cancers.
Purpose of the Study:
- To create a Drosophila melanogaster model for RAS-driven cancers.
- To investigate the role of Ras and Lkb1 in tumor formation and progression.
- To identify therapeutic vulnerabilities in LKB1-mutant RAS-driven tumors.
Main Methods:
- Generation of a Drosophila melanogaster model with Ras/Lkb1 mutations.
- Analysis of tumor growth, cell cycle, and invasion using microscopy.
- Molecular analysis of signaling pathways, including AMPK.
- Correlation of findings with human lung adenocarcinoma patient data.
Main Results:
- Low Ras expression supports Lkb1 mutant tissue survival but causes cell cycle arrest.
- High Ras expression transforms Lkb1 mutant tissue into lethal malignant tumors.
- Ras/Lkb1 tumors show sustained AMPK pathway activation and dependence on CaMK-activated Ampk.
- Human LKB1-mutant lung cancers with high KRAS show worse survival and increased AMPK activation.
Conclusions:
- High oncogenic KRAS drives malignant transformation in LKB1-mutant tissues.
- The AMPK pathway is a critical vulnerability in these aggressive tumors.
- Targeting AMPK may offer a therapeutic strategy for a subset of RAS-driven cancers.
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