PDGFRα and αSMA mark two distinct mesenchymal cell populations involved in parenchymal and vascular remodeling in pulmonary fibrosis

Author:

Biasin Valentina12ORCID,Crnkovic Slaven23ORCID,Sahu-Osen Anita2,Birnhuber Anna2,El Agha Elie4ORCID,Sinn Katharina5,Klepetko Walter5,Olschewski Andrea26,Bellusci Saverio4,Marsh Leigh M.2ORCID,Kwapiszewska Grazyna23

Affiliation:

1. Division of Endocrinology and Diabetology, Department of Internal Medicine, Medical University of Graz, Graz, Austria

2. Ludwig Boltzmann Institute for Lung Vascular Research, Graz, Austria

3. Otto Loewi Research Center, Division of Physiology, Medical University of Graz, Graz, Austria

4. Excellence Cluster Cardio-Pulmonary System (ECCPS), Member of the German Center for Lung Research (DZL), Universities of Giessen and Marburg Lung Center (UGMLC), Justus Liebig University Giessen, Giessen, Germany

5. Division of Thoracic Surgery, Department of Surgery, Medical University of Vienna, Austria

6. Experimental Anesthesiology, Department of Anesthesiology and Intensive Care Medicine, Medical University of Graz, Graz, Austria

Abstract

Pulmonary fibrosis is characterized by pronounced collagen deposition and myofibroblast expansion, whose origin and plasticity remain elusive. We utilized a fate-mapping approach to investigate α-smooth muscle actin (αSMA)+ and platelet-derived growth factor receptor α (PDGFRα)+ cells in two lung fibrosis models, complemented by cell type-specific next-generation sequencing and investigations on human lungs. Our data revealed that αSMA+ and PDGFRα+ cells mark two distinct mesenchymal lineages with minimal transdifferentiation potential during lung fibrotic remodeling. Parenchymal and perivascular fibrotic regions were populated predominantly with PDGFRα+ cells expressing collagen, while αSMA+ cells in the parenchyma and vessel wall showed variable expression of collagen and the contractile protein desmin. The distinct gene expression profile found in normal conditions was retained during pathologic remodeling. Cumulatively, our findings identify αSMA+ and PDGFRα+ cells as two separate lineages with distinct gene expression profiles in adult lungs. This cellular heterogeneity suggests that anti-fibrotic therapy should target diverse cell populations.

Funder

Oesterreichische Nationalbank

Austrian Science Fund

Deutsche Forschungsgemeinschaft

European Respiratory Society Long Term Fellowship

Austria Science Fund

Publisher

American Physiological Society

Subject

Cell Biology,Physiology (medical),Pulmonary and Respiratory Medicine,Physiology

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