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MAPK mutations and cigarette smoke promote the pathogenesis of pulmonary Langerhans cell histiocytosis
Huan Liu, Andrew R. Osterburg, Jennifer Flury, Zulma Swank, Dennis W. McGraw, Nishant Gupta, Kathryn A. Wikenheiser-Brokamp, Ashish Kumar, Abdellatif Tazi, Yoshikazu Inoue, Masaki Hirose, Francis X. McCormack, Michael T. Borchers
Huan Liu, Andrew R. Osterburg, Jennifer Flury, Zulma Swank, Dennis W. McGraw, Nishant Gupta, Kathryn A. Wikenheiser-Brokamp, Ashish Kumar, Abdellatif Tazi, Yoshikazu Inoue, Masaki Hirose, Francis X. McCormack, Michael T. Borchers
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Research Article Immunology Pulmonology

MAPK mutations and cigarette smoke promote the pathogenesis of pulmonary Langerhans cell histiocytosis

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Abstract

Pulmonary Langerhans cell histiocytosis (PLCH) is a rare smoking-related lung disease characterized by dendritic cell (DC) accumulation, bronchiolocentric nodule formation, and cystic lung remodeling. Approximately 50% of patients with PLCH harbor somatic BRAF-V600E mutations in cells of the myeloid/monocyte lineage. However, the rarity of the disease and lack of animal models have impeded the study of PLCH pathogenesis. Here, we establish a cigarette smoke–exposed (CS-exposed) BRAF-V600E–mutant mouse model that recapitulates many hallmark characteristics of PLCH. We show that CD11c-targeted expression of BRAF-V600E increases DC responsiveness to stimuli, including the chemokine CCL20, and that mutant cell accumulation in the lungs of CS-exposed mice is due to both increased cellular viability and enhanced recruitment. Moreover, we report that the chemokine CCL7 is secreted from DCs and human peripheral blood monocytes in a BRAF-V600E–dependent manner, suggesting a possible mechanism for recruitment of cells known to dominate PLCH lesions. Inflammatory lesions and airspace dilation in BRAF-V600E mice in response to CS are attenuated by transitioning animals to filtered air and treatment with a BRAF-V600E inhibitor, PLX4720. Collectively, this model provides mechanistic insights into the role of myelomonocytic cells and the BRAF-V600E mutation and CS exposure in PLCH pathogenesis and provides a platform to develop biomarkers and therapeutic targets.

Authors

Huan Liu, Andrew R. Osterburg, Jennifer Flury, Zulma Swank, Dennis W. McGraw, Nishant Gupta, Kathryn A. Wikenheiser-Brokamp, Ashish Kumar, Abdellatif Tazi, Yoshikazu Inoue, Masaki Hirose, Francis X. McCormack, Michael T. Borchers

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Figure 2

Increased inflammatory cells and disrupted DC homeostasis in the lungs of BRAFVE mice.

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Increased inflammatory cells and disrupted DC homeostasis in the lungs o...
(A) Absolute cell numbers of leukocytes, DCs, macrophages, and T cells in the dissociated lungs of WT (n = 5–8 mice per group) and BRAFVE (n = 5–7 mice per group) mice were determined by flow cytometry. Leukocytes were identified as CD45+; DCs were identified as CD11c+, MHC II+, and autofluorescencemid/low cells; macrophages were identified as CD11c+ and autofluorescencehi cells; and T cells were identified as CD11c– and CD3+cells (n = 5 mice per group). (B) The absolute numbers of CD11b+ DCs and CD103+ DCs were determined by flow cytometry. Both subsets were gated from the DC population. (C) The number of DCs expressing maturation marker CD86 was determined by flow cytometry (n = 5 mice per group). (D and E) DCs were isolated from lungs and treated with or without 20 ng/mL IFN-γ for 2 hours before being treated with 1 μg/mL poly(I:C) or 1 μg/mL LPS for 16 hours. The supernatant was collected and IL-6 and IL-12 p40 were measured by ELISA (n = 5–7 mice per group). For experiments shown, ANOVA (1 way in A and B, 2 way in D and E) with Tukey’s multiple-comparisons analysis was performed. *P < 0.05. Data represent mean ± SEM.

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