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Influenza A–induced cystic fibrosis transmembrane conductance regulator dysfunction increases susceptibility to Streptococcus pneumoniae
Erin Y. Earnhardt, Jennifer L. Tipper, Adonis D’Mello, Ming-Yuan Jian, Elijah S. Conway, James A. Mobley, Carlos J. Orihuela, Hervé Tettelin, Kevin S. Harrod
Erin Y. Earnhardt, Jennifer L. Tipper, Adonis D’Mello, Ming-Yuan Jian, Elijah S. Conway, James A. Mobley, Carlos J. Orihuela, Hervé Tettelin, Kevin S. Harrod
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Research Article Infectious disease Virology

Influenza A–induced cystic fibrosis transmembrane conductance regulator dysfunction increases susceptibility to Streptococcus pneumoniae

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Abstract

Influenza A virus (IAV) infection is commonly complicated by secondary bacterial infections that lead to increased morbidity and mortality. Our recent work demonstrates that IAV disrupts airway homeostasis, leading to airway pathophysiology resembling cystic fibrosis disease through diminished cystic fibrosis transmembrane conductance regulator (CFTR) function. Here, we use human airway organotypic cultures to investigate how IAV alters the airway microenvironment to increase susceptibility to secondary infection with Streptococcus pneumoniae (Spn). We observed that IAV-induced CFTR dysfunction and airway surface liquid acidification is central to increasing susceptibility to Spn. Additionally, we observed that IAV induced profound transcriptional changes in the airway epithelium and proteomic changes in the airway surface liquid in both CFTR-dependent and -independent manners. These changes correspond to multiple diminished host defense pathways and altered airway epithelial function. Collectively, these findings highlight both the importance of CFTR function during infectious challenge and demonstrate a central role for the lung epithelium in secondary bacterial infections following IAV.

Authors

Erin Y. Earnhardt, Jennifer L. Tipper, Adonis D’Mello, Ming-Yuan Jian, Elijah S. Conway, James A. Mobley, Carlos J. Orihuela, Hervé Tettelin, Kevin S. Harrod

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Figure 3

IAV profoundly alters the airway epithelium.

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IAV profoundly alters the airway epithelium.
HBECs were infected with 10...
HBECs were infected with 100,000 PFU of IAV for 72 hours. (A) HBECs were stained for cilia (white), F-actin (green), or IAV (red) and mounted in DAPI Fluoromount (blue). Images were taken at ×40 magnification on a Nikon A1R-HD25. Scale bar: 20 μm. Image is representative of 3 replicates. (B) Principal component analysis (PCA) of the transcriptome of HBECs with and without IAV. (C) Cnetplot of enriched gene ontology (GO) terms after infection with IAV, with the size of each dot representing the number of differentially expressed (DE) genes in the category and the color indicating log2(fold change). The cnetplot was generated using the R package ClusterProfiler v4.0 (D–F) Heatmap of ion channel (GO: 0015276), mucociliary clearance (GO: 0120197), complement activation (GO: 0006956), and response to a molecule of bacterial origin (GO: 0002237) gene expression in HBECs with and without IAV infection. Transcriptomic analysis was conducted on 3 replicates. Green indicates uninfected and orange indicates IAV infected. DE genes were calculated with a false discovery rate of ≤0.05 and an absolute log2(fold change) of ≥1. Plots in D–G are composed of DE genes from the respective category.

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