Organelle resolved proteomics uncovers PLA2R1 as a novel cell surface marker required for chordoma growth
Shahbaz Khan1, Jeffrey A Zuccato2, Vladimir Ignatchenko1
1Princess Margaret Cancer Centre, Princess Margaret Cancer Research Tower, University Health Network, 101 College Street, Room 9-807, Toronto, ON, M5G 1L7, Canada.
Abstract:
Chordomas are clinically aggressive tumors with a high rate of disease progression despite maximal therapy. Given the limited therapeutic options available, there remains an urgent need for the development of novel therapies to improve clinical outcomes. Cell surface proteins are attractive therapeutic targets yet are challenging to profile with common methods. Four chordoma cell lines were analyzed by quantitative proteomics using a differential ultracentrifugation organellar fractionation approach. A subtractive proteomics strategy was applied to select proteins that are plasma membrane enriched. Systematic data integration prioritized PLA2R1 (secretory phospholipase A2 receptor-PLA2R1) as a chordoma-enriched surface protein. The expression profile of PLA2R1 was validated across chordoma cell lines, patient surgical tissue samples, and normal tissue lysates via immunoblotting. PLA2R1 expression was further validated by immunohistochemical analysis in a richly annotated cohort of 25-patient tissues. Immunohistochemistry analysis revealed that elevated expression of PLA2R1 is correlated with poor prognosis. Using siRNA- and CRISPR/Cas9-mediated knockdown of PLA2R1, we demonstrated significant inhibition of 2D, 3D and in vivo chordoma growth. PLA2R1 depletion resulted in cell cycle defects and metabolic rewiring via the MAPK signaling pathway, suggesting that PLA2R1 plays an essential role in chordoma biology. We have characterized the proteome of four chordoma cell lines and uncovered PLA2R1 as a novel cell-surface protein required for chordoma cell survival and association with patient outcome.
Insights
Researchers identified secretory phospholipase A2 receptor (PLA2R1) as a novel cell-surface target in aggressive chordoma tumors. Targeting PLA2R1 significantly inhibited chordoma growth and is linked to patient prognosis.
Area of Science:
- Oncology
- Proteomics
- Molecular Biology
Background:
- Chordomas are aggressive bone tumors with limited treatment options.
- Cell surface proteins are promising therapeutic targets but difficult to identify.
- Novel therapeutic strategies are urgently needed for chordoma.
Purpose of the Study:
- To identify novel cell surface proteins in chordoma.
- To investigate the therapeutic potential of identified proteins.
- To correlate protein expression with patient prognosis.
Main Methods:
- Quantitative proteomics and differential ultracentrifugation organellar fractionation on chordoma cell lines.
- Subtractive proteomics to enrich for plasma membrane proteins.
- Validation of protein expression using immunoblotting and immunohistochemistry.
- Functional studies using siRNA and CRISPR/Cas9 to deplete target protein.
- Analysis of downstream signaling pathways including MAPK.
Main Results:
- Secretory phospholipase A2 receptor (PLA2R1) was identified as a chordoma-enriched surface protein.
- Elevated PLA2R1 expression correlated with poor prognosis in chordoma patients.
- PLA2R1 knockdown significantly inhibited chordoma cell growth in vitro and in vivo.
- PLA2R1 depletion caused cell cycle defects and metabolic rewiring via MAPK signaling.
Conclusions:
- PLA2R1 is a critical cell-surface protein for chordoma cell survival and growth.
- PLA2R1 represents a promising therapeutic target for chordoma.
- Targeting PLA2R1 may offer a novel strategy to improve chordoma patient outcomes.
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