Evidence map›Paper›PMID 40892227›Full record

ArticleDie Naturwissenschaften2025

Single-cell sequencing analysis and multiple machine learning methods identified immune-associated SERPINB1 and CPEB4 as novel biomarkers for COVID-19-induced ARDS.

Hua Yang, Wenjing Wang, Junnan Huang, Yan Yan, Shan Wang, Qianran Shen, Jingjie Li, Tianbo Jin

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Article in Die Naturwissenschaften, 2025. 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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5 · Who and what money

Authors and funding

8 authors.

Hua YangThe College of Life Sciences, Northwest University, #229 TaiBai North Road, Xi'an, 710069, China.
Wenjing WangThe College of Life Sciences, Northwest University, #229 TaiBai North Road, Xi'an, 710069, China.
Junnan HuangThe College of Life Sciences, Northwest University, #229 TaiBai North Road, Xi'an, 710069, China.
Yan YanThe College of Life Sciences, Northwest University, #229 TaiBai North Road, Xi'an, 710069, China.
Shan WangThe College of Life Sciences, Northwest University, #229 TaiBai North Road, Xi'an, 710069, China.
Qianran ShenThe College of Life Sciences, Northwest University, #229 TaiBai North Road, Xi'an, 710069, China.
Jingjie LiThe College of Life Sciences, Northwest University, #229 TaiBai North Road, Xi'an, 710069, China.
Tianbo JinThe College of Life Sciences, Northwest University, #229 TaiBai North Road, Xi'an, 710069, China. jintb@nwu.edu.cn.

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

Acute respiratory distress syndrome (ARDS) is a life-threatening complication of COVID-19, often resulting in respiratory failure and high mortality. Identifying effective molecular biomarkers is crucial for understanding its pathogenesis and improving diagnosis and treatment strategies. We analyzed transcriptomic and single-cell RNA-seq data from public datasets (GSE172114, GSE149878, and GSE213313). Differentially expressed genes (DEGs) were identified using the limma package and weighted gene co-expression network analysis (WGCNA). Single-cell analysis was used to define cell-type-specific expression. Three machine learning algorithms-LASSO, SVM-RFE, and Random Forest-were applied to identify robust hub genes. External dataset GSE213313 was used for validation. CIBERSORT was applied to estimate immune cell infiltration in ARDS tissues. We identified 915 DEGs between COVID-19-induced ARDS and controls, mainly enriched in immune receptor activity and cytokine signaling. Through integrative machine learning and validation, SERPINB1 and CPEB4 were identified as key genes, with strong diagnostic performance (AUCs: 0.940 and 0.948, respectively). Immune infiltration analysis revealed that both genes were highly correlated with neutrophils, and also associated with B memory cells, T cells, NK cells, monocytes, and mast cells. GSEA showed these genes were involved in immune and inflammatory pathways, indicating functional relevance in ARDS. SERPINB1 and CPEB4 were identified as novel immune-related biomarkers for COVID-19-induced ARDS. Their strong association with neutrophil infiltration suggests that they may play critical roles in disease progression. These findings provide new insights into immune mechanisms and offer promising targets for early diagnosis and therapeutic intervention in ARDS.

Indexed as

COVID-19Machine LearningRespiratory Distress SyndromeSerpinsSingle-Cell AnalysisBiomarkersHumansSARS-CoV-2TranscriptomeBiomarkersSerpinsCOVID-19-induced acute respiratory distress syndromeDifferentially expressed genesImmune InfiltrationMachine learningSingle-cell sequencingWeighted co-expression network analysis

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.