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Published on: June 9, 2020
Musashi-2 (MSI2) regulation of DNA damage response in lung cancer
Igor Bychkov1, Alexander Deneka1, Iuliia Topchu2
1Fox Chase Cancer Center.
Abstract:
Lung cancer is one of the most common types of cancer worldwide. Non-small cell lung cancer (NSCLC), typically caused by KRAS and TP53 driver mutations, represents the majority of all new lung cancer diagnoses. Overexpression of the RNA-binding protein (RBP) Musashi-2 (MSI2) has been associated with NSCLC progression. To investigate the role of MSI2 in NSCLC development, we compared the tumorigenesis in mice with lung-specific Kras-activating mutation and Trp53 deletion, with and without Msi2 deletion (KPM2 versus KP mice). KPM2 mice showed decreased lung tumorigenesis in comparison with KP mice. In addition, KPM2 lung tumors showed evidence of decreased proliferation, but increased DNA damage, marked by increased levels of phH2AX (S139) and phCHK1 (S345), but decreased total and activated ATM. Using cell lines from KP and KPM2 tumors, and human NSCLC cell lines, we found that MSI2 directly binds ATM mRNA and regulates its translation. MSI2 depletion impaired DNA damage response (DDR) signaling and sensitized human and murine NSCLC cells to treatment with PARP inhibitors in vitro and in vivo. Taken together, we conclude that MSI2 supports NSCLC tumorigenesis, in part, by supporting repair of DNA damage by controlling expression of DDR proteins. These results suggest that targeting MSI2 may be a promising strategy for lung cancers treated with DNA-damaging agents.
Insights
Musashi-2 (MSI2) protein promotes non-small cell lung cancer (NSCLC) growth by aiding DNA damage repair. Inhibiting MSI2 may enhance lung cancer treatments, especially those using DNA-damaging agents.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Non-small cell lung cancer (NSCLC) is a major global cancer, often driven by KRAS and TP53 mutations.
- Overexpression of Musashi-2 (MSI2), an RNA-binding protein, correlates with NSCLC progression.
Approach:
- Compared lung tumorigenesis in mice with Kras mutations and Trp53 deletion, with and without Msi2 deletion.
- Analyzed DNA damage response pathways and MSI2's interaction with ATM mRNA.
- Assessed the impact of MSI2 depletion on NSCLC cell sensitivity to PARP inhibitors.
Key Points:
- Mice lacking Msi2 exhibited reduced lung tumorigenesis, decreased proliferation, and increased DNA damage.
- MSI2 directly binds ATM mRNA, regulating its translation and impacting DNA damage response (DDR) signaling.
- MSI2 depletion sensitized NSCLC cells to PARP inhibitors in vitro and in vivo.
Conclusions:
- MSI2 supports NSCLC tumorigenesis by facilitating DNA damage repair through control of DDR protein expression.
- Targeting MSI2 presents a potential therapeutic strategy for NSCLC, particularly when combined with DNA-damaging agents.
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