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Network analyses of upper and lower airway transcriptomes identify shared mechanisms among children with recurrent
Zhili Wang1,2, Yu He1,2, Qinyuan Li1,2
1Department of Respiratory Medicine, Children's Hospital of Chongqing Medical University, Key Laboratory of Child Development and Disorders, National Clinical Research Center for Child Health and Disorders, Ministry of Education, Chongqing, China.
Insights
Identifying shared molecular pathways in recurrent wheezing (RW) and school-age asthma (SA) is crucial. This study found fatty acid metabolism and specific hub genes (CST1, CST2, CST4, POSTN, NRTK2) link these conditions, aiding in subset classification.
Area of Science:
- Pediatric Pulmonology
- Molecular Biology
- Bioinformatics
Background:
- Predicting school-age asthma (SA) in preschool children with recurrent wheezing (RW) is challenging.
- Understanding the pathogenesis of RW and its link to SA is critical.
- RW and SA are often studied independently despite shared genetic and environmental factors.
Purpose of the Study:
- To identify convergent transcriptomic mechanisms in recurrent wheezing and school-age asthma.
- To explore shared molecular pathways and identify key genes linking RW and SA.
Main Methods:
- Network analysis of nasal and tracheal transcriptomes from RNA-sequencing data.
- Cell deconvolution to infer airway cellular composition.
- Consensus weighted gene co-expression network analysis and enrichment analysis.
- Machine learning to identify hub genes, validated by qRT-PCR and external datasets.
Main Results:
- Transcriptional networks of RW and SA show similarities in upper and lower airways.
- Increased mast cells and decreased club cells observed in both RW and SA airways.
- Two consensus modules linked to RW and SA highlighted shared fatty acid metabolism pathways.
- Five hub genes (CST1, CST2, CST4, POSTN, NRTK2) were identified and validated.
- Gene signatures of these hub genes may differentiate T2-high and T2-low subsets in RW.
Conclusions:
- Findings enhance understanding of RW molecular pathogenesis.
- Provides a basis for further research into the mechanistic relationship between RW and SA.
- Identified hub genes may aid in classifying RW subsets for targeted interventions.
Background:
Predicting which preschool children with recurrent wheezing (RW) will develop school-age asthma (SA) is difficult, highlighting the critical need to clarify the pathogenesis of RW and the mechanistic relationship between RW and SA. Despite shared environmental exposures and genetic determinants, RW and SA are usually studied in isolation. Based on network analysis of nasal and tracheal transcriptomes, we aimed to identify convergent transcriptomic mechanisms in RW and SA.
Methods:
RNA-sequencing data from nasal and tracheal brushing samples were acquired from the Gene Expression Omnibus. Combined with single-cell transcriptome data, cell deconvolution was used to infer the composition of 18 cellular components within the airway. Consensus weighted gene co-expression network analysis was performed to identify consensus modules closely related to both RW and SA. Shared pathways underlying consensus modules between RW and SA were explored by enrichment analysis. Hub genes between RW and SA were identified using machine learning strategies and validated using external datasets and quantitative reverse transcription-polymerase chain reaction (qRT-PCR). Finally, the potential value of hub genes in defining RW subsets was determined using nasal and tracheal transcriptome data.
Results:
Co-expression network analysis revealed similarities in the transcriptional networks of RW and SA in the upper and lower airways. Cell deconvolution analysis revealed an increase in mast cell fraction but decrease in club cell fraction in both RW and SA airways compared to controls. Consensus network analysis identified two consensus modules highly associated with both RW and SA. Enrichment analysis of the two consensus modules indicated that fatty acid metabolism-related pathways were shared key signals between RW and SA. Furthermore, machine learning strategies identified five hub genes, i.e., CST1, CST2, CST4, POSTN, and NRTK2, with the up-regulated hub genes in RW and SA validated using three independent external datasets and qRT-PCR. The gene signatures of the five hub genes could potentially be used to determine type 2 (T2)-high and T2-low subsets in preschoolers with RW.
Conclusions:
These findings improve our understanding of the molecular pathogenesis of RW and provide a rationale for future exploration of the mechanistic relationship between RW and SA.
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