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Updated: Oct 27, 2025

"Cell Surface Capture" Workflow for Label-Free Quantification of the Cell Surface Proteome
Published on: March 24, 2023
Integration of RNA-Seq and proteomics data identifies glioblastoma multiforme surfaceome signature
Saiful Effendi Syafruddin1, Wan Fahmi Wan Mohamad Nazarie2, Nurshahirah Ashikin Moidu1
1UKM Medical Molecular Biology Institute, Universiti Kebangsaan Malaysia, Bandar Tun Razak, Cheras, 56000, Kuala Lumpur, Malaysia.
Background:
Glioblastoma multiforme (GBM) is a highly lethal, stage IV brain tumour with a prevalence of approximately 2 per 10,000 people globally. The cell surface proteins or surfaceome serve as information gateway in many oncogenic signalling pathways and are important in modulating cancer phenotypes. Dysregulation in surfaceome expression and activity have been shown to promote tumorigenesis. The expression of GBM surfaceome is a case in point; OMICS screening in a cell-based system identified that this sub-proteome is largely perturbed in GBM. Additionally, since these cell surface proteins have 'direct' access to drugs, they are appealing targets for cancer therapy. However, a comprehensive GBM surfaceome landscape has not been fully defined yet. Thus, this study aimed to define GBM-associated surfaceome genes and identify key cell-surface genes that could potentially be developed as novel GBM biomarkers for therapeutic purposes.
Methods:
We integrated the RNA-Seq data from TCGA GBM (n = 166) and GTEx normal brain cortex (n = 408) databases to identify the significantly dysregulated surfaceome in GBM. This was followed by an integrative analysis that combines transcriptomics, proteomics and protein-protein interaction network data to prioritize the high-confidence GBM surfaceome signature.
Results:
Of the 2381 significantly dysregulated genes in GBM, 395 genes were classified as surfaceome. Via the integrative analysis, we identified 6 high-confidence GBM molecular signature, HLA-DRA, CD44, SLC1A5, EGFR, ITGB2, PTPRJ, which were significantly upregulated in GBM. The expression of these genes was validated in an independent transcriptomics database, which confirmed their upregulated expression in GBM. Importantly, high expression of CD44, PTPRJ and HLA-DRA is significantly associated with poor disease-free survival. Last, using the Drugbank database, we identified several clinically-approved drugs targeting the GBM molecular signature suggesting potential drug repurposing.
Conclusions:
In summary, we identified and highlighted the key GBM surface-enriched repertoires that could be biologically relevant in supporting GBM pathogenesis. These genes could be further interrogated experimentally in future studies that could lead to efficient diagnostic/prognostic markers or potential treatment options for GBM.
Insights
Researchers identified key cell surface genes in glioblastoma multiforme (GBM), a deadly brain cancer. Six genes, including CD44 and EGFR, were found to be upregulated and associated with poor survival, offering potential therapeutic targets.
Area of Science:
- Neuro-oncology
- Cancer genomics
- Proteomics
Background:
- Glioblastoma multiforme (GBM) is a lethal brain tumor with dysregulated cell surface proteins (surfaceome).
- The GBM surfaceome is perturbed, and its proteins are potential therapeutic targets due to direct drug accessibility.
- A comprehensive GBM surfaceome landscape is currently undefined, necessitating further investigation.
Purpose of the Study:
- To define GBM-associated surfaceome genes.
- To identify key cell-surface genes as potential biomarkers for GBM diagnosis and therapy.
Main Methods:
- Integrated RNA-Seq data from TCGA GBM and GTEx normal brain cortex databases.
- Combined transcriptomics, proteomics, and protein-protein interaction network analysis to identify high-confidence GBM surfaceome signature.
Main Results:
- Identified 395 significantly dysregulated surfaceome genes in GBM out of 2381 total.
- Discovered a 6-gene GBM molecular signature (HLA-DRA, CD44, SLC1A5, EGFR, ITGB2, PTPRJ), all upregulated in GBM.
- Validated gene upregulation in an independent dataset; high expression of CD44, PTPRJ, and HLA-DRA correlated with poor disease-free survival.
- Identified clinically-approved drugs targeting the GBM signature genes, suggesting drug repurposing opportunities.
Conclusions:
- Highlighted key GBM surface-enriched genes relevant to pathogenesis.
- These genes warrant further experimental investigation for developing diagnostic/prognostic markers or therapeutic strategies for GBM.

