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RPTOR blockade suppresses brain metastases of NSCLC by interfering the ceramide metabolism via hijacking YY1 binding
Ying Lin1, Yun Wu2, Qiangzu Zhang3
1Department of Respiratory and Critical Care Medicine, Shengli Clinical Medical College, Fujian Medical University, Fujian Provincial Hospital, Fuzhou, 350001, Fujian, China.
Background:
Ceramide metabolism is crucial in the progress of brain metastasis (BM). However, it remains unexplored whether targeting ceramide metabolism may arrest BM.
Methods:
RNA sequencing was applied to screen different genes in primary and metastatic foci and whole-exome sequencing (WES) to seek crucial abnormal pathway in BM + and BM-patients. Cellular arrays were applied to analyze the permeability of blood-brain barrier (BBB) and the activation or inhibition of pathway. Database and Co-Immunoprecipitation (Co-IP) assay were adopted to verify the protein-protein interaction. Xenograft and zebrafish model were further employed to verify the cellular results.
Results:
RNA sequencing and WES reported the involvement of RPTOR and ceramide metabolism in BM progress. RPTOR was significantly upregulated in BM foci and increased the permeability of BBB, while RPTOR deficiency attenuated the cell invasiveness and protected extracellular matrix. Exogenous RPTOR boosted the SPHK2/S1P/STAT3 cascades by binding YY1, in which YY1 bound to the regions of SPHK2 promoter (at -353 ~ -365 nt), further promoting the expression of SPHK2. The latter was rescued by YY1 RNAi. Xenograft and zebrafish model showed that RPTOR blockade suppressed BM of non-small cell lung cancer (NSCLC) and impaired the SPHK2/S1P/STAT3 pathway.
Conclusion:
RPTOR is a key driver gene in the brain metastasis of lung cancer, which signifies that RPTOR blockade may serve as a promising therapeutic candidate for clinical application.
Insights
Targeting RPTOR can halt brain metastasis (BM) in lung cancer by disrupting ceramide metabolism. RPTOR blockade offers a promising therapeutic strategy for treating brain metastasis.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metastasis
Background:
- Ceramide metabolism plays a critical role in the progression of brain metastasis (BM).
- The potential of targeting ceramide metabolism to inhibit BM remains largely unexplored.
Purpose of the Study:
- To investigate the role of ceramide metabolism in brain metastasis.
- To identify key genes and pathways involved in lung cancer brain metastasis.
- To evaluate RPTOR as a potential therapeutic target for brain metastasis.
Main Methods:
- RNA sequencing and whole-exome sequencing (WES) were used to identify genes and pathways in BM.
- Cellular assays assessed blood-brain barrier (BBB) permeability and pathway activity.
- Protein-protein interactions were verified using Co-Immunoprecipitation (Co-IP) and database analysis.
- Xenograft and zebrafish models were employed for in vivo validation.
Main Results:
- RPTOR and ceramide metabolism were implicated in BM progression.
- Upregulated RPTOR increased BBB permeability and promoted the SPHK2/S1P/STAT3 pathway via YY1.
- RPTOR deficiency reduced cell invasiveness and extracellular matrix degradation.
- RPTOR blockade suppressed non-small cell lung cancer (NSCLC) brain metastasis in vivo.
Conclusions:
- RPTOR is identified as a key driver gene in lung cancer brain metastasis.
- Targeting RPTOR presents a potential therapeutic strategy for clinical application in treating brain metastasis.
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