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A single-cell RNA sequencing atlas of the COPD distal lung to predict cell-cell communication

GSE269390 Homo sapiens Expression profiling by high throughput sequencing 6 samples Submitted 2024/11/06 Platform GPL24676
Summary
In the lungs of chronic obstructive pulmonary disease (COPD) patients, numerous cell types interact in a structurally abnormal and inflammatory microenvironment. Assessing gene expression in individual cells by single-cell RNA sequencing (scRNA-seq) allows for a deeper understanding of cell types within a complex sample, like the COPD distal lung. ScRNA-seq data can be combined with cell-cell communication prediction tools to predict cellular interactions within a given sample; indeed, this approach was previously used to show evidence for increased endothelial CXCL signaling in COPD. To maximize the value of these tools, it is critical to have representation across cell lineages (e.g., epithelial, immune, endothelial, and mesenchymal). However, this can be challenging in diseases like COPD where inflammatory cells often dominate samples compared to less frequent cell types that are also perturbed in disease, such as the airway epithelium. To explore intercellular interactions in the COPD lung, we performed scRNA-seq on single cell suspensions from 6 COPD distal lung samples then combined these with previously published data to assemble a multisite COPD and control scRNA-seq dataset with increased representation of non-immune lineages.
Published in
A Single-Cell RNA Sequencing Atlas of the Chronic Obstructive Pulmonary Disease Distal Lung to Predict Cell-Cell Communication
Blackburn JB, Tufenkjian TS, Liu Y et al. · American journal of respiratory cell and molecular biology 2025 · PMID 39356793 · doi:10.1165/rcmb.2024-0232LE
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Direct links to NCBI, no account and no request form: the whole study as GSE269390_RAW.tar, processed values as the series matrix, the supplementary file directory, and per-sample supplementary files for any of the 6 samples. Raw sequencing reads are also available from ENA.

Also filed as BioProject PRJNA1121368 and SRA study SRP512498. Searching any of these in the dataset finder brings you back here.

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