GDPD5-CD55-EGFR competitive binding axis regulates radioresistance and lipid accumulation in rectal cancer
Ruiqiu Zhu1, Mingyue Li1, Yi Shen2
1Department of Radiotherapy & Oncology, The Second Affiliated Hospital of Soochow University, Suzhou, China.
Abstract:
Resistance to neoadjuvant chemoradiotherapy in rectal cancer diminishes survival benefits, potentially due to dysregulated lipid metabolism, though the mechanisms are unclear. Using the MSigDB database and GSE68204 cohort, we identified lipid metabolism genes linked to radiotherapy resistance. We developed resistant cell lines and xenograft models, and through multi-algorithm analysis (SVM-RFE, RF, LASSO), pinpointed key genes. Molecular mechanisms were explored via Western blotting, co-immunoprecipitation, molecular docking, and functional assays, validated in patient-derived organoids. Our study found that radiotherapy-resistant rectal cancer shows a lipid accumulation phenotype, with an inverse relationship between lipid droplet deposition and radiosensitivity in resistant cell models. The multi-algorithm screening identified GDPD5 as a key regulator. Silencing GDPD5 reduced lipid accumulation and increased radiosensitivity. Mechanistically, GDPD5 competes with CD55, disrupting its interaction with EGFR and promoting EGFR nuclear translocation, which suppresses p53 and leads to lipid buildup and radiotherapy resistance in tumors. Clinical samples showed high GDPD5 and low CD55 levels correlate with EGFR nuclear localization. Patient-derived organoids with high GDPD5 also showed increased radiotherapy resistance. Our findings indicate that GDPD5 facilitates EGFR nuclear translocation by binding to CD55, suppressing p53, and causing lipid accumulation and radiotherapy resistance in tumors. Targeting the GDPD5-CD55-EGFR interaction may enhance radiosensitivity.
Insights
Resistance to rectal cancer radiotherapy can be overcome by targeting GDPD5. This protein promotes lipid accumulation and tumor resistance by disrupting EGFR signaling. Inhibiting GDPD5 may improve treatment outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- Rectal cancer resistance to neoadjuvant chemoradiotherapy reduces survival.
- Dysregulated lipid metabolism is implicated but poorly understood.
- Identifying mechanisms of resistance is crucial for improving patient outcomes.
Purpose of the Study:
- To investigate the role of lipid metabolism in rectal cancer radiotherapy resistance.
- To identify key molecular regulators of this resistance.
- To explore potential therapeutic targets for enhancing radiosensitivity.
Main Methods:
- Bioinformatic analysis of gene expression data (MSigDB, GSE68204).
- Development of resistant cell lines and xenograft models.
- Multi-algorithm gene screening (SVM-RFE, RF, LASSO).
- Molecular assays (Western blotting, co-IP, docking) and functional studies.
- Validation in patient-derived organoids.
Main Results:
- Radiotherapy-resistant rectal cancer exhibits lipid accumulation.
- GDPD5 was identified as a key regulator, promoting lipid accumulation and resistance.
- GDPD5 silencing increased radiosensitivity.
- GDPD5 disrupts CD55-EGFR interaction, promoting EGFR nuclear translocation, p53 suppression, and lipid buildup.
- High GDPD5/low CD55 correlated with EGFR nuclear localization in patients.
Conclusions:
- GDPD5 drives radiotherapy resistance in rectal cancer via the CD55-EGFR-p53 axis, leading to lipid accumulation.
- Targeting the GDPD5-CD55-EGFR interaction presents a potential strategy to enhance radiosensitivity.
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