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Angela M Groves1, Carl J Johnston1,2, Ravi S Misra1
1a Department of Pediatrics and Neonatology, University of Rochester School of Medicine and Dentistry, Rochester, New York; and.
Abstract:
Exposure of the lung to radiation produces injury and inflammatory responses that result in microenvironmental alterations, which can promote the development of pneumonitis and/or pulmonary fibrosis. It has been shown that after other toxic insults, macrophages become phenotypically polarized in response to microenvironmental signals, orchestrating the downstream inflammatory responses. However, their contribution to the development of the late consequences of pulmonary radiation exposure remains unclear. To address this issue, fibrosis-prone C57BL/6J mice or pneumonitis-prone C3H/HeJ mice were whole-lung irradiated with 0 or 12.5 Gy and lung digests were collected between 3 and 26 weeks after radiation exposure. CD45(+) leukocytes were isolated and characterized by flow cytometry, and alveolar, interstitial and infiltrating macrophages were also detected. Ly6C, expressed by pro-inflammatory monocytes and macrophages, and mannose receptor (CD206), a marker of alternative activation, were assessed in each subpopulation. While the total number of pulmonary macrophages was depleted at 3 weeks after lung irradiation relative to age-matched controls in both C57 and C3H mice, identification of discrete subpopulations showed that this loss in cell number occurred in the alveolar, but not the interstitial or infiltrating, subsets. In the alveolar macrophages of both C57 and C3H mice, this correlated with a loss in the proportion of cells that expressed CD206 and F4/80. In contrast, in interstitial and infiltrating macrophages, the proportion of cells expressing these markers was increased at several time points after irradiation, with this response generally more pronounced in C3H mice. Radiation exposure was also associated with elevations in the proportion of alveolar and interstitial macrophage subpopulations expressing Ly6C and F4/80, with this response occurring at earlier time points in C57 mice. Although the radiation dose used in this study was not isoeffective for the inflammatory response in the two strains, the differences observed in the responses of these discrete macrophage populations between the fibrosis-prone versus pneumonitis-prone mice nonetheless suggest a possible role for these cells in the development of long-term consequences of pulmonary radiation exposure.
Insights
Radiation exposure alters lung macrophage populations, affecting alveolar, interstitial, and infiltrating cells differently. These changes suggest a role for macrophages in radiation-induced lung injury and fibrosis.
Area of Science:
- Pulmonary Medicine
- Immunology
- Radiation Oncology
Background:
- Radiation exposure to the lung causes injury and inflammation, leading to pneumonitis and pulmonary fibrosis.
- Macrophages are key immune cells that polarize in response to injury and orchestrate inflammatory responses.
- The specific role of macrophage polarization in the late effects of pulmonary radiation exposure is not well understood.
Purpose of the Study:
- To investigate the contribution of distinct pulmonary macrophage subpopulations to the development of late consequences following lung radiation exposure.
- To characterize the phenotypic changes and cellular dynamics of alveolar, interstitial, and infiltrating macrophages after irradiation in different mouse models.
Main Methods:
- Whole-lung irradiation (12.5 Gy) was administered to fibrosis-prone C57BL/6J and pneumonitis-prone C3H/HeJ mice.
- Lung digests were collected from 3 to 26 weeks post-irradiation for leukocyte isolation and flow cytometry analysis.
- Macrophages were identified and quantified, with assessment of Ly6C (pro-inflammatory marker) and CD206 (alternative activation marker) expression in subpopulations.
Main Results:
- Pulmonary macrophage numbers decreased at 3 weeks post-irradiation, primarily in the alveolar subset, in both mouse strains.
- Alveolar macrophages showed reduced CD206 and F4/80 expression, while interstitial and infiltrating macrophages exhibited increased expression of these markers.
- Radiation exposure led to increased Ly6C and F4/80 expression in alveolar and interstitial macrophages, with earlier onset in C57BL/6J mice.
Conclusions:
- Distinct pulmonary macrophage subpopulations exhibit differential responses to radiation exposure.
- Observed changes in macrophage populations suggest a potential role in the pathogenesis of radiation-induced pneumonitis and pulmonary fibrosis.
- Strain-dependent differences in macrophage responses may contribute to varying susceptibilities to radiation-induced lung damage.
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