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Identification of triptolide, a natural diterpenoid compound, as an inhibitor of lung inflammation
Gary W Hoyle1, Christine I Hoyle, Jing Chen
1Department of Environmental and Occupational Health Sciences, School of Public Health and Information Sciences, University of Louisville, Louisville, KY 40202, USA. Gary.Hoyle@louisville.edu
Abstract:
Inflammation is associated with various pulmonary diseases and contributes to the pathogenesis of acute lung injury. We previously identified a proinflammatory signaling pathway triggered by G protein-coupled receptors (GPCRs) in which stimulation of G(q)-coupled GPCRs results in activation of the transcription factor NF-kappaB. Because damage to the lung causes the release of multiple mediators acting through G(q)-coupled GPCRs, this signaling pathway is likely to contribute to inflammatory processes in the injured lung. In an effort to identify novel inhibitors of lung inflammation, the National Institutes of Health Clinical Collection, a library of 446 compounds, was screened for inhibitory activity toward production of IL-8 induced by stimulation of the G(q)-coupled tachykinin 1 receptor with substance P in A549 cells. Twenty-eight compounds that significantly inhibited substance P-induced IL-8 production were identified. The most potent inhibitor was triptolide, a diterpenoid compound from Tripterygium wilfordii Hook F, a vine used in traditional Chinese medicine for the treatment of autoimmune diseases. Triptolide inhibited IL-8 production induced by substance P with an IC(50) of 2.3 x 10(-8) M and inhibited NF-kappaB activation in response to an agonist of the protease-activated receptor 2 with an IC(50) of 1.4 x 10(-8) M. Anti-inflammatory effects of triptolide were assessed in vivo using a chlorine gas lung injury model in mice. Triptolide inhibited neutrophilic inflammation and the production of KC (Cxcl1) in the lungs of chlorine-exposed mice. The results demonstrate that triptolide exhibits anti-inflammatory activity in cultured lung cells and in an in vivo model of acute lung injury.
Insights
Triptolide, derived from traditional Chinese medicine, effectively inhibits lung inflammation by blocking key signaling pathways. This compound shows promise for treating acute lung injury and related inflammatory pulmonary diseases.
Area of Science:
- Pulmonary Medicine
- Pharmacology
- Immunology
Background:
- Inflammation is a key factor in pulmonary diseases and acute lung injury.
- G protein-coupled receptors (GPCRs) and NF-kappaB activation are involved in lung inflammatory signaling.
- Mediators acting through G(q)-coupled GPCRs contribute to inflammation in injured lungs.
Purpose of the Study:
- To screen for novel inhibitors of lung inflammation.
- To identify compounds that inhibit IL-8 production triggered by G(q)-coupled GPCRs.
- To evaluate the anti-inflammatory potential of identified compounds in lung injury models.
Main Methods:
- Screening of the National Institutes of Health Clinical Collection (446 compounds).
- Assay for inhibition of IL-8 production induced by substance P and tachykinin 1 receptor agonists in A549 cells.
- Assessment of NF-kappaB activation and in vivo anti-inflammatory effects in a chlorine gas-induced lung injury mouse model.
Main Results:
- Twenty-eight compounds inhibited substance P-induced IL-8 production.
- Triptolide was identified as the most potent inhibitor, with an IC(50) of 2.3 x 10(-8) M for IL-8 production and 1.4 x 10(-8) M for NF-kappaB activation.
- Triptolide reduced neutrophilic inflammation and KC (Cxcl1) production in mice with chlorine gas-induced lung injury.
Conclusions:
- Triptolide demonstrates significant anti-inflammatory activity in lung cells and an in vivo model of acute lung injury.
- Triptolide is a promising therapeutic candidate for inflammatory pulmonary diseases.
- Targeting GPCR-mediated inflammatory pathways offers a strategy for novel lung injury treatments.
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