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STAT3 pathway regulates lung-derived brain metastasis initiating cell capacity through miR-21 activation
Mohini Singh1,2, Neha Garg1,3, Chitra Venugopal1,3
1McMaster Stem Cell and Cancer Research Institute, McMaster University, Hamilton, Ontario, Canada.
Abstract:
Brain metastases (BM) represent the most common tumor to affect the adult central nervous system. Despite the increasing incidence of BM, likely due to consistently improving treatment of primary cancers, BM remain severely understudied. In this study, we utilized patient-derived stem cell lines from lung-to-brain metastases to examine the regulatory role of STAT3 in brain metastasis initiating cells (BMICs). Annotation of our previously described BMIC regulatory genes with protein-protein interaction network mapping identified STAT3 as a novel protein interactor. STAT3 knockdown showed a reduction in BMIC self-renewal and migration, and decreased tumor size in vivo. Screening of BMIC lines with a library of STAT3 inhibitors identified one inhibitor to significantly reduce tumor formation. Meta-analysis identified the oncomir microRNA-21 (miR-21) as a target of STAT3 activity. Inhibition of miR-21 displayed similar reductions in BMIC self-renewal and migration as STAT3 knockdown. Knockdown of STAT3 also reduced expression of known downstream targets of miR-21. Our studies have thus identified STAT3 and miR-21 as cooperative regulators of stemness, migration and tumor initiation in lung-derived BM. Therefore, STAT3 represents a potential therapeutic target in the treatment of lung-to-brain metastases.
Insights
STAT3 and microRNA-21 (miR-21) cooperate to drive stemness and migration in lung cancer brain metastases. Inhibiting STAT3 or miR-21 reduced tumor formation, highlighting STAT3 as a potential therapeutic target for brain metastases.
Area of Science:
- Oncology
- Neuroscience
- Molecular Biology
Background:
- Brain metastases (BM) are the most common adult central nervous system tumors.
- BM incidence is rising, yet they remain understudied.
- Lung cancer frequently metastasizes to the brain.
Purpose of the Study:
- To investigate the role of STAT3 in lung-to-brain metastasis initiating cells (BMICs).
- To identify novel therapeutic targets for lung-derived BM.
Main Methods:
- Utilized patient-derived BMIC lines from lung-to-brain metastases.
- Performed protein-protein interaction network mapping.
- Conducted STAT3 knockdown and inhibition studies.
- Screened STAT3 inhibitors.
- Performed meta-analysis to identify microRNA targets.
- Inhibited microRNA-21 (miR-21).
Main Results:
- STAT3 was identified as a novel interactor in BMICs.
- STAT3 knockdown reduced BMIC self-renewal, migration, and in vivo tumor growth.
- A STAT3 inhibitor significantly reduced tumor formation.
- STAT3 targets miR-21, an oncomir.
- miR-21 inhibition mimicked STAT3 knockdown effects on BMICs.
- STAT3 knockdown reduced expression of miR-21 downstream targets.
Conclusions:
- STAT3 and miR-21 cooperatively regulate stemness, migration, and tumor initiation in lung-derived BM.
- STAT3 is a potential therapeutic target for lung-to-brain metastases.
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