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Recruitment and training of alveolar macrophages after pneumococcal pneumonia
Emad I. Arafa, Anukul T. Shenoy, Kimberly A. Barker, Neelou S. Etesami, Ian M.C. Martin, Carolina Lyon De Ana, Elim Na, Christine V. Odom, Wesley N. Goltry, Filiz T. Korkmaz, Alicia K. Wooten, Anna C. Belkina, Antoine Guillon, E. Camilla Forsberg, Matthew R. Jones, Lee J. Quinton, Joseph P. Mizgerd
Emad I. Arafa, Anukul T. Shenoy, Kimberly A. Barker, Neelou S. Etesami, Ian M.C. Martin, Carolina Lyon De Ana, Elim Na, Christine V. Odom, Wesley N. Goltry, Filiz T. Korkmaz, Alicia K. Wooten, Anna C. Belkina, Antoine Guillon, E. Camilla Forsberg, Matthew R. Jones, Lee J. Quinton, Joseph P. Mizgerd
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Research Article Immunology Pulmonology

Recruitment and training of alveolar macrophages after pneumococcal pneumonia

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Abstract

Recovery from pneumococcal pneumonia remodels the pool of alveolar macrophages so that they exhibit new surface marker profiles, transcriptomes, metabolomes, and responses to infection. Mechanisms mediating alveolar macrophage phenotypes after pneumococcal pneumonia have not been delineated. IFN-γ and its receptor on alveolar macrophages were essential for certain, but not all, aspects of the remodeled alveolar macrophage phenotype. IFN-γ was produced by CD4+ T cells plus other cells, and CD4+ cell depletion did not prevent alveolar macrophage remodeling. In mice infected or recovering from pneumococcus, monocytes were recruited to the lungs, and the monocyte-derived macrophages developed characteristics of alveolar macrophages. CCR2 mediated the early monocyte recruitment but was not essential to the development of the remodeled alveolar macrophage phenotype. Lineage tracing demonstrated that recovery from pneumococcal pneumonias converted the pool of alveolar macrophages from being primarily of embryonic origin to being primarily of adult hematopoietic stem cell origin. Alveolar macrophages of either origin demonstrated similar remodeled phenotypes, suggesting that ontogeny did not dictate phenotype. Our data reveal that the remodeled alveolar macrophage phenotype in lungs recovered from pneumococcal pneumonia results from a combination of new recruitment plus training of both the original cells and the new recruits.

Authors

Emad I. Arafa, Anukul T. Shenoy, Kimberly A. Barker, Neelou S. Etesami, Ian M.C. Martin, Carolina Lyon De Ana, Elim Na, Christine V. Odom, Wesley N. Goltry, Filiz T. Korkmaz, Alicia K. Wooten, Anna C. Belkina, Antoine Guillon, E. Camilla Forsberg, Matthew R. Jones, Lee J. Quinton, Joseph P. Mizgerd

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Figure 7

Immune activities in the absence of IFN-γ receptor on AM.

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Immune activities in the absence of IFN-γ receptor on AM.
CD11c-Cre and ...
CD11c-Cre and IFNGR1-floxed mice were crossed to produce IFNGR1 mutation in CD11c+ cells. Prior pneumococcal experience was generated as described in Methods for all mice in the studies shown. AM and neutrophils were identified as CD11c+SiglecF+ and Ly6Gbright cells in bronchoalveolar lavage fluids. (A) Viable bacteria per lung, after mice were infected i.t. 24 hours previously with Sp3. n = 6–8 mice per group. (B) Neutrophils in the air spaces of mice with 7 hours of Sp3 pneumonia, quantified in BAL fluids. n = 6–10 mice/group. (C) Fraction of AM that were actively phagocytic, expressed as the percentage of total AM that were associated with PKH67-labeled bacteria 40 minutes after instillation. n = 7 mice per group. (D) Amount of Sp3 phagocytized by AM that were actively phagocytic, expressed as the MFI of those AM that were PKH67+ 40 minutes after instillation of fluorescent bacteria. (E–K) Surface levels of phagocytic receptors and pattern-recognition receptors on AM from the phagocytosis experiment, expressed as MFI. (L and M) Concentrations of CXCL9 and OSM in BAL fluids and lung homogenates collected 7 hours after Sp3 infection. n = 7–10 mice/group. For A–K, data were compared using unpaired t tests. For L and M, data were compared using 2-way ANOVA with Tukey’s multiple-comparison test. Values are expressed as mean ± SEM.

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