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Author

Chang Chen

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Open access Aug 2026

Multi‐Omics Integration Identifies a CDH3‐Associated Malignant Epithelial State and Immunosuppressive Niche to Predict Prognosis in Thymic Epithelial Tumors

ABSTRACT Thymic epithelial tumors (TETs) are rare and heterogeneous malignancies whose aggressive epithelial states and microenvironmental organization remain poorly defined. Here, we integrated single‐cell RNA sequencing, spatial transcriptomics, multiplex immunofluorescence, bulk transcriptomics, functional assays, xenograft validation, and computational pathology to characterize malignant epithelial heterogeneity in TETs. We identified a CDH3‐associated malignant epithelial state located at the origin of malignant‐state trajectories and enriched for stem‐like and EMT‐related features. Spatial transcriptomics and multiplex immunofluorescence showed that CDH3+ tumor cells preferentially localized within an M2 macrophage‐rich immunosuppressive niche, while cell–cell communication analyses nominated CCN2–LRP1 as a candidate epithelial–myeloid crosstalk axis. A 68‐gene CDH3‐associated signature stratified TCGA‐THYM into biologically distinct subgroups with differences in survival, histology, genomic instability, and immune contexture. Patient‐derived thymic carcinoma organoids showed elevated CDH3 expression, and CDH3 silencing suppressed thymic carcinoma cell proliferation, migration, invasion, EMT/PI3K–Akt‐related signaling, and macrophage‐associated crosstalk. Candidate inhibitors showed antitumor activity in xenograft models. We also established a deep learning pathology model that captured CDH3‐associated morphology from routine H&E slides and predicted patient outcome. Together, these findings define CDH3 as a biomarker and therapeutic target linking malignant epithelial plasticity to immunosuppressive niche formation and adverse clinical behavior in TETs.

Yuntao Feng, Jing-Yu Chen, Lang Xia et al. · 0 citations
Open access Jul 2026

PRRC2A-mediated m6A modification on NCOA4 promotes thymic epithelial tumor progression through PKM2-induced glycolysis.

Thymic epithelial tumors (TETs) are heterogeneous neoplasms. While most early-stage cases are curable after resection, advanced or aggressive subtypes have limited treatment options and poor outcomes. The molecular mechanisms underlying their metabolic reprogramming remain poorly understood. Proline-rich Coiled-coil 2a (PRRC2A), a N6-methyladenosine (m6A) reader protein, is significantly upregulated in TET tissues and is associated with poor clinical outcomes. Multi-omics analyses and molecular experiments revealed that PRRC2A binds to m6A-modified sites within the NCOA4 mRNA, thereby stabilizing NCOA4 transcripts and enhancing its protein expression. Elevated NCOA4 interacts with PKM2, a rate-limiting glycolytic enzyme, resulting in increased glycolysis and promoting TETs progression. In vivo experiments showed that inhibition of PRRC2A suppressed tumor growth and metastasis in TETs, while combined treatment with the PKM2 inhibitor C599 and PRRC2A knockdown produced enhanced antitumor effects. These findings provide novel insights into the glycolytic metabolic regulation of TETs and suggest that the PRRC2A-NCOA4-PKM2 axis represents a promising therapeutic target.

Tao Wang, Lang Xia, Lei Zhang et al. · 0 citations

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