Related Experiment Video
Updated: Jun 22, 2026

Adoptive Transfer of IL-33-Stimulated Macrophages into Bleomycin-Induced Mouse Models to Study Their Effect on Idiopathic Pulmonary Fibrosis In Vivo
Published on: May 5, 2023
Pulmonary inflammation triggered by ricin toxin requires macrophages and IL-1 signaling
Meghan L Lindauer1, John Wong, Yoichiro Iwakura
1Department of Cell and Developmental Biology, Oregon Health and Science University, Portland, OR 97239, USA.
Abstract:
Ricin is a potent ribotoxin considered to be a potentially dangerous bioterrorist agent due to its wide availability and the possibility of aerosol delivery to human populations. Studies in rodents and nonhuman primates have demonstrated that ricin delivered to the pulmonary system leads to acute lung injury and symptoms resembling acute respiratory distress syndrome. Increasing evidence suggests that the inflammatory effects triggered by ricin are responsible for its lethality. We demonstrated previously that ricin administered to the lungs of mice causes death of pulmonary macrophages and the release of proinflammatory cytokines, suggesting macrophages may be a primary target of ricin. Here we examined the requirement for macrophages in the development of ricin-mediated pulmonary inflammation by employing transgenic (MAFIA) mice that express an inducible gene driven by the c-fms promoter for Fas-mediated apoptosis of macrophages upon injection of a synthetic dimerizer, AP20187. Administration of aerosolized ricin to macrophage-depleted mice led to reduced inflammatory responses, including recruitment of neutrophils, expression of proinflammatory transcripts, and microvascular permeability. When compared with control mice treated with ricin, macrophage-depleted mice treated with ricin displayed a reduction in pulmonary IL-1beta. Employing mice deficient in IL-1, we found that ricin-induced inflammatory responses were suppressed, including neutrophilia. Neutrophilia could be restored by co-administering ricin and exogenous IL-1beta to IL-1alpha/beta(-/-) mice. Furthermore, IL1Ra/anakinra cotreatment inhibited ricin-mediated inflammatory responses, including recruitment of neutrophils, expression of proinflammatory genes, and histopathology. These data suggest a central role for macrophages and IL-1 signaling in the inflammatory process triggered by ricin.
Insights
Macrophages and IL-1 signaling are critical for ricin-induced lung inflammation. Depleting macrophages or blocking IL-1 significantly reduces ricin
Area of Science:
- Toxicology
- Immunology
- Pulmonary Medicine
Background:
- Ricin is a bioterrorism threat causing acute lung injury via inflammation.
- Macrophages are implicated as a primary target in ricin toxicity.
- Understanding ricin's inflammatory pathways is crucial for developing countermeasures.
Purpose of the Study:
- To investigate the role of macrophages in ricin-induced pulmonary inflammation.
- To elucidate the involvement of IL-1 signaling in ricin toxicity.
Main Methods:
- Utilized transgenic MAFIA mice for inducible macrophage depletion.
- Administered aerosolized ricin to control and macrophage-depleted mice.
- Assessed inflammatory markers, cytokine levels (IL-1beta), and neutrophilia in response to ricin.
- Employed IL-1 deficient mice and IL1Ra/anakinra for further mechanistic studies.
Main Results:
- Macrophage depletion significantly reduced ricin-induced lung inflammation, neutrophil recruitment, and vascular permeability.
- Pulmonary IL-1beta levels were decreased in macrophage-depleted mice post-ricin exposure.
- IL-1 deficient mice showed suppressed inflammatory responses to ricin, which were reversible with IL-1beta administration.
- IL1Ra/anakinra treatment inhibited ricin-mediated inflammation and lung pathology.
Conclusions:
- Macrophages play a central role in mediating ricin-induced pulmonary inflammation.
- IL-1 signaling is a key pathway in ricin toxicity.
- Targeting macrophages and IL-1 may offer therapeutic strategies against ricin exposure.
Related Concept Videos
Chronic Inflammation: Introduction
Acute Inflammation I: Inflammatory Response
