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Targeting positive feedback between BASP1 and EGFR as a therapeutic strategy for lung cancer progression
Ching-Chan Lin1,2, Yu-Kai Huang3, Chia-Fong Cho4
1Graduate Institute of Clinical Medical Science, China Medical University, Taichung 404, Taiwan.
Abstract:
Rationale: Brain metastasis in patients with lung cancer is life-threatening. However, the molecular mechanism for this catastrophic disease remains elusive, and few druggable targets are available. Therefore, this study aimed to identify and characterize proteins that could be used as therapeutic targets. Methods: Proteomic analyses were conducted to identify differentially expressed membrane proteins between brain metastatic lung cancer cells and primary lung cancer cells. A neuronal growth-associated protein, brain acid soluble protein 1 (BASP1), was chosen for further investigation. The clinical relevance of BASP1 in lung adenocarcinoma was first assessed. Tyrosine kinase activity assays and in vitro and in vivo functional assays were conducted to explore the oncogenic mechanisms of BASP1. Results: The protein levels of BASP1 were positively associated with tumor progression and poor prognosis in patients with lung adenocarcinoma. Membrane-bound BASP1 increased EGFR signaling and stabilized EGFR proteins by facilitating their escape from the ubiquitin-proteasome pathway. Reciprocally, activation of EGFR recruited more BASP1 to the plasma membrane, generating a positive feedback loop between BASP1 and EGFR. Moreover, the synergistic therapeutic effects of EGFR tyrosine kinase inhibitor and arsenic trioxide led to a reduction in the level of BASP1 protein observed in lung cancer cells with acquired resistance to EGFR inhibitors. Conclusions: The reciprocal interaction between BASP1 and EGFR facilitates EGFR signaling in brain metastatic lung cancer. Targeting the newly identified BASP1-EGFR interaction could open new venues for lung cancer treatment.
Insights
Brain metastasis in lung cancer is driven by brain acid-soluble protein 1 (BASP1) interacting with EGFR. Targeting this BASP1-EGFR pathway offers a new therapeutic strategy for brain metastatic lung cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metastasis
Background:
- Brain metastasis is a life-threatening complication of lung cancer with poorly understood molecular mechanisms.
- Limited druggable targets exist for treating brain metastatic lung cancer.
Purpose of the Study:
- To identify and characterize novel therapeutic targets for brain metastatic lung cancer.
- To investigate the role of brain acid-soluble protein 1 (BASP1) in lung adenocarcinoma brain metastasis.
Main Methods:
- Proteomic analysis to identify differentially expressed membrane proteins in brain metastatic versus primary lung cancer cells.
- Assessment of BASP1 clinical relevance in lung adenocarcinoma.
- In vitro and in vivo functional assays, including tyrosine kinase activity assays, to elucidate BASP1's oncogenic mechanisms.
Main Results:
- BASP1 protein levels correlate positively with tumor progression and poor prognosis in lung adenocarcinoma.
- Membrane-bound BASP1 enhances epidermal growth factor receptor (EGFR) signaling and protein stability by inhibiting ubiquitination.
- A positive feedback loop exists between BASP1 and EGFR, with EGFR activation recruiting more BASP1 to the plasma membrane.
- Combined EGFR tyrosine kinase inhibitor and arsenic trioxide treatment reduced BASP1 levels in EGFR inhibitor-resistant lung cancer cells.
Conclusions:
- The interaction between BASP1 and EGFR promotes EGFR signaling in brain metastatic lung cancer.
- Targeting the BASP1-EGFR interaction presents a potential new therapeutic avenue for lung cancer treatment, particularly for brain metastases.
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