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Pulmonary fibroblast-derived stem cell factor promotes neutrophilic asthma by augmenting IL-17A production from ILC3s
Jheng-Syuan Shao, Alan Chuan-Ying Lai, Wei-Chang Huang, Ko-Chien Wu, Po-Yu Chi, Yao-Ming Chang, Ya-Jen Chang
Jheng-Syuan Shao, Alan Chuan-Ying Lai, Wei-Chang Huang, Ko-Chien Wu, Po-Yu Chi, Yao-Ming Chang, Ya-Jen Chang
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Research Article Immunology Inflammation

Pulmonary fibroblast-derived stem cell factor promotes neutrophilic asthma by augmenting IL-17A production from ILC3s

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Abstract

Group 3 innate lymphoid cells (ILC3s) have emerged as an important player in the pathogenesis of neutrophilic asthma. However, the regulatory mechanism supporting ILC3 responses in the lung remains largely unclear. Here, we demonstrated that stem cell factor (SCF) expression is significantly increased and positively correlated with IL-17A and MPO expression in asthmatic patients. Notably, we identified ILC3 as a major IL-17A–producing responder to SCF in the lung. In mice, SCF synergized with IL-1β/IL-23 to enhance pulmonary ILC3 activation and neutrophilic inflammation. Mechanistically, SCF promoted ILC3 proliferation and cytokine production. Transcriptomic analysis revealed that SCF treatment upregulated the genes related to proliferation and Th17 differentiation, associated with increased AKT and STAT3 signaling. In contrast, deficiency of SCF receptor c-Kit reduced ILC3 proliferation and IL-17A production, resulting in the amelioration of airway hyperreactivity (AHR) and neutrophilic inflammation in mouse neutrophilic asthma model. Furthermore, genetic deletion of SCF in fibroblasts revealed fibroblasts as the primary source of SCF for ILC3 activation in the lung. Moreover, administration of imatinib, a c-Kit inhibitor, alleviated LPS, air pollution or ovalbumin/LPS-induced AHR and neutrophilic inflammation. Our findings elucidated a positive modulatory role of SCF/c-Kit signaling in ILC3 responses during neutrophilic inflammation, offering a potential therapeutic target for neutrophilic asthma.

Authors

Jheng-Syuan Shao, Alan Chuan-Ying Lai, Wei-Chang Huang, Ko-Chien Wu, Po-Yu Chi, Yao-Ming Chang, Ya-Jen Chang

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Figure 2

SCF promotes ILC3 effector function and STAT3 pathway.

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SCF promotes ILC3 effector function and STAT3 pathway.
(A) Sorted lung I...
(A) Sorted lung ILCs (CD45+Thy1.2+Lin-) were treated with either IL-1β/IL-23 or IL-1β/IL-23/SCF for 48 hours and then analyzed by flow cytometry. Percentage of IL-17A+ cells in ILC3s (CD45+Thy1.2+Lin-ROR-γt+). n = 3 per group. (B–E) Sorted small intestine ILC3s (CD45intThy1.2hiLin-KLRG1–) were treated with either IL-1β/IL-23 or IL-1β/IL-23/SCF for 6 hours and then subjected to RNA-seq analysis. (B) Heatmap showing differentially expressed genes, with a statistical cutoff of P < 0.005. (C) Gene Ontology (GO) biological process enrichment analyses of the genes upregulated in IL-1β/IL-23/SCF-treated ILC3s relative to IL-1β/IL-23 alone. (D) Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses of the genes upregulated in IL-1β/IL-23/SCF-treated ILC3s relative to IL-1β/IL-23 alone. (E) Gene set enrichment analysis (GSEA) for KEGG JAK-STAT signaling pathway in IL-1β/IL-23/SCF-treated ILC3s relative to IL-1β/IL-23 alone. n = 4 per group. (F and G) Sorted lung ILCs (CD45+Thy1.2+Lin-) were treated with either IL-1β/IL-23 or IL-1β/IL-23/SCF for 10 minutes and then analyzed by flow cytometry. (F) Percentage of pSTAT3+ cells in ILC3s (CD45+Thy1.2+Lin-ROR-γt+). n = 3 per group. (G) Percentage of pAKT+ cells in ILC3s. n = 3 per group. All sorted cells were pooled from at least 10 mice and the data are representative of at least 3 independent experiments. Significance was determined by 2-tailed paired Student’s t test (A, F, and G).

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ISSN: 0021-9738 (print), 1558-8238 (online)

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