Evidence map›Paper›PMID 41935998›Full record

ArticleNaunyn-Schmiedeberg's archives of pharmacology2026

Integrative multi-omics identifies a diagnostic T cell signature for cutaneous squamous cell carcinoma.

Tao Xu, Guotai Yao, Yu Wang, Wei Li, Shuangmeng Mou, Zhongzhi Wang

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In one paragraph

Article in Naunyn-Schmiedeberg's archives of pharmacology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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1 · What the graph read from it

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4 · The record

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5 · Who and what money

Authors and funding

6 authors.

Tao Xu *Department of Dermatology, School of Medicine, Shanghai Fourth People's Hospital, Tongji University, Shanghai, 200434, China.
Guotai Yao *Department of Dermatology, School of Medicine, Shanghai Fourth People's Hospital, Tongji University, Shanghai, 200434, China.
Yu WangDepartment of Dermatology, The General Hospital of Western Theater Command PLA, Chengdu, 610083, China.
Wei LiDepartment of Dermatology, The 945 Hospital of Joint Logistics Support Force of Chinese PLA, Ya'an, 625000, China.
Shuangmeng MouDepartment of Dermatology, Ya'an Polytechnic College Affiliated Hospital, Ya'an, 625000, China. mushuangmeng@163.com.
Zhongzhi WangDepartment of Dermatology, School of Medicine, Shanghai Fourth People's Hospital, Tongji University, Shanghai, 200434, China. wangzhongzhi@tongji.edu.cn.

Funding

Scientific research projects of Shanghai HongKou Health Commission 2202-21Subject Enhancement Programme of Shanghai Fourth People's Hospital, School of Medicine, Tongji University SY-XKZT-2022-2002
6 · The paper itself

Abstract

Cutaneous squamous cell carcinoma (cSCC) involves complex immune interactions. This study aimed to identify a T cell-related gene signature to characterize the immune landscape and aid in molecular diagnosis. We integrated single-cell RNA sequencing (scRNA-seq) and five bulk microarray datasets, utilizing an independent RNA-seq cohort for external validation. Feature genes were identified from the intersection of scRNA-seq-defined T cell-related genes (TRGs) and bulk differentially expressed genes using machine learning. A diagnostic nomogram was constructed, and its performance was assessed via ROC curves. In addition, immune infiltration, immunofluorescence staining, drug interactions, and clinical expression (qRT-PCR) were evaluated. Screening yielded 28 T cell-related DEGs enriched in extracellular matrix functions. machine learning selected a core signature: APOE, CYBA, and S100A2. The diagnostic model demonstrated high diagnostic performance in the studied cohorts (AUC > 0.9) across training and external validation cohorts. Clinically, qRT-PCR supported significant upregulation of CYBA and S100A2. APOE exhibited distinct immunomodulatory connectivity, correlating positively with Th17 cells and negatively with Tregs, whereas CYBA and S100A2 were associated with Treg infiltration. Immunofluorescence results revealed significantly elevated levels of S100A2 and Foxp3 in cSCC tissues compared to the control group. Pharmacogenetic analysis highlights the association of these genes, particularly the APOE gene, with drug response. This T cell-associated signature highlights the potential link between molecular diagnosis and immune characterization. Specifically, CYBA and S100A2 are identified as promising diagnostic candidate signatures, while APOE may reflect immunomodulatory heterogeneity. These findings offer insights for developing diagnostic strategies and targeted immunotherapies in cSCC.

Indexed as

Carcinoma, Squamous CellCutaneous Squamous Cell CarcinomaSkin NeoplasmsT-LymphocytesHumansMachine LearningMultiomicsAPOECutaneous squamous cell carcinomaCytochrome b-245 alpha chainS100 calcium-binding protein A2Single-cell RNA sequencingT cell

Identifiers

PMID41935998

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