Lumikine Attenuates Ventilation-Induced Lung Injury in Mice with Lipopolysaccharide-Induced Lung Fibrosis

Lipopolysaccharide (LPS) induces pulmonary fibrosis by increasing microvascular permeability and inducing severe inflammation and extracellular matrix accumulation. Mechanical ventilation (MV), although life-sustaining, can increase inflammatory cytokine production, oxidative stress, and alveolar–capillary membrane permeability, leading to ventilator-induced lung injury and pulmonary fibrosis. Lumican is essential for extracellular matrix signaling and wound fibrogenesis in the lungs, cornea, and heart. Lumikine, a peptide corresponding to the 13 C-terminal amino acids of lumican, binds to transforming growth factor-β receptor I/activin receptor-like kinase 5 and promotes wound healing. How the lumican pathway contributes to MV-induced lung inflammation and fibrosis remains unclear. We hypothesized that MV with or without LPS pretreatment would exacerbate lung injury, oxidative stress, and lung fibrosis through the lumican pathway. C57BL/6 mice (wild-type and lumican-deficient) were injected with LPS (intratracheal; 7 days) to induce lung fibrosis and then subjected to MV (10 mL/kg; room air; 8 h). Nonventilated mice served as controls. MV with LPS pretreatment reduced lumican expression and increased microvascular permeability, matrix metalloproteinase-9 level, transforming growth factor-β1 level, α-smooth muscle actin staining intensity, and Masson’s trichrome staining intensity. Lumikine substantially mitigated these fibrotic changes. In conclusion, lumikine attenuates MV-induced exacerbation of pulmonary fibrosis after LPS-induced acute lung injury, partially by modulating the lumican pathway.

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Journal
International Journal of Molecular Sciences
Published
2026-09-24
DOI
https://doi.org/10.3390/ijms27198515
Primary Topic
Respiratory Support and Mechanisms
Type
article
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article

Lumikine Attenuates Ventilation-Induced Lung Injury in Mice with Lipopolysaccharide-Induced Lung Fibrosis

Yung-Yang Liu, Pao‐Hsien Chu, Chien‐Ming Chu, Huang-Pin Wu et al.
International Journal of Molecular Sciences
Respiratory Support and Mechanisms
article

Lumikine Attenuates Ventilation-Induced Lung Injury in Mice with Lipopolysaccharide-Induced Lung Fibrosis

Yung-Yang Liu, Pao‐Hsien Chu, Chien‐Ming Chu, Huang-Pin Wu, Ping‐Chi Liu, Chih-Yu Huang, Chung‐Chieh Yu, Li‐Fu Li, Winston W.‐Y. Kao
article en

Abstract

Lipopolysaccharide (LPS) induces pulmonary fibrosis by increasing microvascular permeability and inducing severe inflammation and extracellular matrix accumulation. Mechanical ventilation (MV), although life-sustaining, can increase inflammatory cytokine production, oxidative stress, and alveolar–capillary membrane permeability, leading to ventilator-induced lung injury and pulmonary fibrosis. Lumican is essential for extracellular matrix signaling and wound fibrogenesis in the lungs, cornea, and heart. Lumikine, a peptide corresponding to the 13 C-terminal amino acids of lumican, binds to transforming growth factor-β receptor I/activin receptor-like kinase 5 and promotes wound healing. How the lumican pathway contributes to MV-induced lung inflammation and fibrosis remains unclear. We hypothesized that MV with or without LPS pretreatment would exacerbate lung injury, oxidative stress, and lung fibrosis through the lumican pathway. C57BL/6 mice (wild-type and lumican-deficient) were injected with LPS (intratracheal; 7 days) to induce lung fibrosis and then subjected to MV (10 mL/kg; room air; 8 h). Nonventilated mice served as controls. MV with LPS pretreatment reduced lumican expression and increased microvascular permeability, matrix metalloproteinase-9 level, transforming growth factor-β1 level, α-smooth muscle actin staining intensity, and Masson’s trichrome staining intensity. Lumikine substantially mitigated these fibrotic changes. In conclusion, lumikine attenuates MV-induced exacerbation of pulmonary fibrosis after LPS-induced acute lung injury, partially by modulating the lumican pathway.

International Journal of Molecular SciencesVol. 27(19)
National Yang Ming Chiao Tung University (TW), Chang Gung University (TW), Taipei Veterans General Hospital (TW), Chang Gung Memorial Hospital (TW), University of Cincinnati (US)
Openalex Percentile: Top 12%
Respiratory Support and Mechanisms
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