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Updated: Feb 3, 2026

Isolation of Type I and Type II Pericytes from Mouse Skeletal Muscles
Published on: May 26, 2017
Characterization of human PDGFR-β-positive pericytes from IPF and non-IPF lungs
Carole L Wilson1, Sarah E Stephenson1, Jean Paul Higuero1
1Division of Pulmonary, Critical Care, Allergy and Sleep Medicine, Medical University of South Carolina , Charleston, South Carolina.
Abstract:
Pericytes are key regulators of the microvasculature through their close interactions with the endothelium. However, pericytes play additional roles in tissue homeostasis and repair, in part by transitioning into myofibroblasts. Accumulation of myofibroblasts is a hallmark of fibrotic diseases such as idiopathic pulmonary fibrosis (IPF). To understand the contribution and role of pericytes in human lung fibrosis, we isolated these cells from non-IPF control and IPF lung tissues based on expression of platelet-derived growth factor receptor-β (PDGFR-β), a common marker of pericytes. When cultured in a specialized growth medium, PDGFR-β+ cells retain the morphology and marker profile typical of pericytes. We found that IPF pericytes migrated more rapidly and invaded a basement membrane matrix more readily than control pericytes. Exposure of cells to transforming growth factor-β, a major fibrosis-inducing cytokine, increased expression of α-smooth muscle actin and extracellular matrix genes in both control and IPF pericytes. Given that pericytes are uniquely positioned in vivo to respond to danger signals of both systemic and tissue origin, we stimulated human lung pericytes with agonists having pathogen-associated molecular patterns (PAMPs) or damage-associated molecular patterns (DAMPs). Both control and IPF lung pericytes increased expression of proinflammatory chemokines in response to specific PAMPs and DAMPs released from necrotic cells. Our results suggest that control and IPF lung pericytes are poised to react to tissue damage, as well as microbial and fibrotic stimuli. However, IPF pericytes are primed for migration and matrix invasion, features that may contribute to the function of these cells in lung fibrosis.
Insights
Idiopathic pulmonary fibrosis (IPF) lung pericytes show enhanced migration and matrix invasion compared to control cells. These pericytes, crucial for tissue repair, are primed to respond to damage and microbial signals, potentially driving lung fibrosis.
Area of Science:
- Cell Biology
- Pulmonary Medicine
- Fibrosis Research
Background:
- Pericytes regulate microvasculature and contribute to tissue repair by transforming into myofibroblasts.
- Myofibroblast accumulation is a key feature of fibrotic diseases like idiopathic pulmonary fibrosis (IPF).
Purpose of the Study:
- To investigate the role and contribution of pericytes in human lung fibrosis.
- To compare the behavior of pericytes isolated from IPF and non-IPF control lung tissues.
Main Methods:
- Isolation of platelet-derived growth factor receptor-β (PDGFR-β)+ pericytes from human lung tissues.
- Culturing pericytes and assessing their migratory and invasive properties.
- Stimulating pericytes with transforming growth factor-β, pathogen-associated molecular patterns (PAMPs), and damage-associated molecular patterns (DAMPs).
Main Results:
- IPF pericytes exhibited increased migration and basement membrane invasion compared to control pericytes.
- Transforming growth factor-β upregulated myofibroblast and extracellular matrix markers in both cell types.
- Both control and IPF pericytes responded to PAMPs and DAMPs by increasing proinflammatory chemokine expression.
Conclusions:
- Lung pericytes are reactive to tissue damage, microbial, and fibrotic stimuli.
- IPF pericytes possess heightened migratory and invasive capabilities, suggesting a role in the pathogenesis of lung fibrosis.
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