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Single-Cell Transcriptomic Analysis of Human Lung Provides Insights into the Pathobiology of Pulmonary Fibrosis

American Journal of Respiratory and Critical Care Medicine · 2018 · Vol. 199(12) · pp. 1517–1536
Paul A. ReyfmanJames M. WalterNikita JoshiKishore R. AnekallaAlexandra C. McQuattie‐PimentelStephen ChiuRamiro FernandezMahzad AkbarpourChing-I ChenZiyou RenRohan VermaHiam Abdala‐ValenciaKi-Won NamMonica ChiSeungHye HanFrancisco J. González-GonzálezSaul SoberanesSatoshi WatanabeKinola J.N. WilliamsAnnette S. FlozakTrevor T. NicholsonVince K. MorganDeborah R. WinterMonique HinchcliffCara L. HruschRobert D. GuzyCatherine A. BonhamAnne I. SperlingRemzi BagRobert B. HamanakaGökhan M. MutluAnjana V. YeldandiStacy A. MarshallAli ShilatifardLuı́s A. Nunes AmaralHarris PerlmanJacob I. SznajderA. Christine ArgentoColin T. GillespieJane E. DematteManu JainBenjamin D. SingerKaren M. RidgeAnna P. LamAnkit BharatSangeeta BhoradeCara J. GottardiG. R. Scott BudingerAlexander V. Misharin

Abstract

<b>Rationale:</b> The contributions of diverse cell populations in the human lung to pulmonary fibrosis pathogenesis are poorly understood. Single-cell RNA sequencing can reveal changes within individual cell populations during pulmonary fibrosis that are important for disease pathogenesis. <b>Objectives:</b> To determine whether single-cell RNA sequencing can reveal disease-related heterogeneity within alveolar macrophages, epithelial cells, or other cell types in lung tissue from subjects with pulmonary fibrosis compared with control subjects. <b>Methods:</b> We performed single-cell RNA sequencing on lung tissue obtained from eight transplant donors and eight recipients with pulmonary fibrosis and on one bronchoscopic cryobiospy sample from a patient with idiopathic pulmonary fibrosis. We validated these data using <i>in situ</i> RNA hybridization, immunohistochemistry, and bulk RNA-sequencing on flow-sorted cells from 22 additional subjects. <b>Measurements and Main Results:</b> We identified a distinct, novel population of profibrotic alveolar macrophages exclusively in patients with fibrosis. Within epithelial cells, the expression of genes involved in Wnt secretion and response was restricted to nonoverlapping cells. We identified rare cell populations including airway stem cells and senescent cells emerging during pulmonary fibrosis. We developed a web-based tool to explore these data. <b>Conclusions:</b> We generated a single-cell atlas of pulmonary fibrosis. Using this atlas, we demonstrated heterogeneity within alveolar macrophages and epithelial cells from subjects with pulmonary fibrosis. These results support the feasibility of discovery-based approaches using next-generation sequencing technologies to identify signaling pathways for targeting in the development of personalized therapies for patients with pulmonary fibrosis.

Interstitial Lung Diseases and Idiopathic Pulmonary FibrosisNeonatal Respiratory Health ResearchIL-33, ST2, and ILC PathwaysPulmonary fibrosisLungMedicineIdiopathic pulmonary fibrosisFibrosisCellPathologySingle-cell analysisWnt signaling pathwayCell type

MeSH terms

AnimalsCells, CulturedDisease Models, AnimalEpithelial CellsFemaleHumansMaleStem CellsSequence Analysis, RNAIdiopathic Pulmonary FibrosisTranscriptome

Funding

  • U.S. Department of Defense
  • Arthritis National Research Foundation
  • Scleroderma Foundation
  • American Lung Association
  • Rheumatology Research Foundation
  • Northwestern University
  • Respiratory Health Association
  • Northwestern Memorial Foundation
  • Mallinckrodt Pharmaceuticals
  • National Research Foundation
  • United States-Israel Binational Science Foundation
  • National Institutes of Health
Citations
1,246
FWCI
100.07
field-weighted impact
References
57
Percentile
100%
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