Single-cell RNA sequencing identifies diverse roles of epithelial cells in idiopathic pulmonary fibrosis

Yan Xu, Takako Mizuno, Anusha Sridharan, Yina Du, Minzhe Guo, Jie Tang, Kathryn A. Wikenheiser‐Brokamp, Anne‐Karina T. Perl, Vincent Funari, Jason J. Gokey,

JCI Insight · 2016 · 586 citations · 36 references

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TL;DR

Idiopathic pulmonary fibrosis is a lethal interstitial lung disease marked by airway remodeling, inflammation, alveolar destruction, and fibrosis. The study aimed to use single‑cell RNA sequencing to identify epithelial cell types and their associated biological processes in IPF pathogenesis. Single‑cell RNA sequencing was performed on normal and IPF lung epithelial cells to delineate cell‑type–specific gene expression and signaling pathways. Transcriptomic profiling revealed that normal alveolar type 2 cells express surfactant‑homeostasis genes, whereas IPF lungs contain basal, goblet, and atypical transitional epithelial subsets that co‑express AT1, AT2, and airway markers, exhibit indeterminate differentiation, and show aberrant activation of TGF‑β, HIPPO/YAP, P53, WNT, and AKT/PI3K pathways, leading to disrupted alveolar architecture and loss of proximal‑peripheral epithelial identity, thereby providing a rich resource for further investigation of IPF pathogenesis.

Abstract

Idiopathic pulmonary fibrosis (IPF) is a lethal interstitial lung disease characterized by airway remodeling, inflammation, alveolar destruction, and fibrosis. We utilized single-cell RNA sequencing (scRNA-seq) to identify epithelial cell types and associated biological processes involved in the pathogenesis of IPF. Transcriptomic analysis of normal human lung epithelial cells defined gene expression patterns associated with highly differentiated alveolar type 2 (AT2) cells, indicated by enrichment of RNAs critical for surfactant homeostasis. In contrast, scRNA-seq of IPF cells identified 3 distinct subsets of epithelial cell types with characteristics of conducting airway basal and goblet cells and an additional atypical transitional cell that contributes to pathological processes in IPF. Individual IPF cells frequently coexpressed alveolar type 1 (AT1), AT2, and conducting airway selective markers, demonstrating "indeterminate" states of differentiation not seen in normal lung development. Pathway analysis predicted aberrant activation of canonical signaling via TGF-β, HIPPO/YAP, P53, WNT, and AKT/PI3K. Immunofluorescence confocal microscopy identified the disruption of alveolar structure and loss of the normal proximal-peripheral differentiation of pulmonary epithelial cells. scRNA-seq analyses identified loss of normal epithelial cell identities and unique contributions of epithelial cells to the pathogenesis of IPF. The present study provides a rich data source to further explore lung health and disease.

References

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