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Multi-Omics and Single-Cell Dissection of Exostosin Glycosyltransferases (EXT1/EXT2) Reveals Divergent Oncogenic
Yi-Chun Chiang1,2, Chih-Yang Wang3,4, Neethu Palekkode4,5
1Institute of Medicine, Chung Shan Medical University, Taichung 40201, Taiwan.
Abstract:
Exostosin glycosyltransferase 1 (EXT1) and exostosin glycosyltransferase 2 (EXT2) catalyze heparan sulfate chain elongation and are increasingly implicated in cancer biology, but their roles in gliomas remain incompletely defined. Here, we performed an integrative multi-omics analysis to dissect the transcriptional, epigenetic, and microenvironmental landscape of EXT1 and EXT2 across gliomas. Bulk transcriptomic data from The Cancer Genome Atlas (TCGA) and the Chinese Glioma Genome Atlas (CGGA) revealed that both EXT1 and EXT2 are upregulated in high-grade gliomas and associate with adverse survival, with EXT1 showing the strongest and most consistent prognostic impact. Gene set enrichment analysis (GSEA) and gene set variation analysis (GSVA) indicated that EXT1-high tumors are enriched for DNA damage and replication stress programs, cell cycle progression, inflammatory response, and stromal activation pathways, whereas EXT2 expression is preferentially linked to extracellular matrix remodeling, cytoskeletal organization and angiogenesis-related signaling. Single-cell RNA sequencing and Immune deconvolution using Cell-type Identification By Estimating Relative Subsets Of RNA Transcripts (CIBERSORT) and Estimation of STromal and Immune cells in MAlignant Tumor tissues using Expression data (ESTIMATE) showed that EXT1 correlates with increased stromal and immune scores, and reduced cytotoxic T cell signatures, consistent with an immunosuppressive tumor microenvironment. EXT2 expression is enriched in gliomas with pronounced vascular and mesenchymal features, supporting a complementary role in invasive growth and tissue remodeling. Immunohistochemistry on a glioma tissue microarray validated the upregulation of EXT1 protein in high-grade tumors. The study findings identified EXT1 as a central glycosylation-linked regulator of replication stress tolerance and immune remodeling in gliomas, and suggest that EXT2 contributes to extracellular matrix and cytoskeletal reprogramming. The exostosin axis represents a promising source of prognostic biomarkers and potential therapeutic targets in glioma.
Insights
Exostosin-1 (EXT1) and Exostosin-2 (EXT2) are upregulated in high-grade gliomas, impacting survival. EXT1 regulates replication stress and immune suppression, while EXT2 influences tumor remodeling, offering potential therapeutic targets.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genomics
Background:
- Exostosin glycosyltransferases (EXT1 and EXT2) are key in heparan sulfate synthesis.
- Their specific roles in glioma pathogenesis are not fully understood.
- Heparan sulfate modifications are implicated in various cancers.
Purpose of the Study:
- To investigate the roles of EXT1 and EXT2 in glioma using multi-omics analysis.
- To determine their prognostic significance and association with tumor microenvironment.
- To explore their potential as therapeutic targets in glioma.
Main Methods:
- Integrative multi-omics analysis of TCGA and CGGA glioma datasets.
- Bulk and single-cell RNA sequencing, GSEA, GSVA, CIBERSORT, ESTIMATE.
- Immunohistochemistry on glioma tissue microarrays.
Main Results:
- EXT1 and EXT2 are upregulated in high-grade gliomas, correlating with poor survival.
- EXT1 is a strong prognostic marker, linked to DNA damage, cell cycle, and immunosuppression.
- EXT2 is associated with extracellular matrix remodeling and mesenchymal features.
Conclusions:
- EXT1 acts as a key regulator of replication stress and immune evasion in gliomas.
- EXT2 contributes to glioma invasion and tissue remodeling.
- The EXT axis presents promising prognostic biomarkers and therapeutic targets for glioma.
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