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Activation of lung megakaryocyte α7 nAChR exacerbates allergic airway inflammation via IL-33/p38 MAPK signaling
Hang Wu, Rujia Tao, Shitao Xie, Yao Zhou, Jin-Fu Xu, Zhenwei Xia, Xiao Su
Hang Wu, Rujia Tao, Shitao Xie, Yao Zhou, Jin-Fu Xu, Zhenwei Xia, Xiao Su
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Research Article Immunology Inflammation Pulmonology

Activation of lung megakaryocyte α7 nAChR exacerbates allergic airway inflammation via IL-33/p38 MAPK signaling

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Abstract

The cholinergic antiinflammatory pathway attenuates lung inflammation via the α7 nicotinic acetylcholine receptor (α7 nAChR) on immune cells. However, the role of α7 nAChR on lung megakaryocytes (Mks) in allergic airway inflammation remains unknown. In this study, allergen-challenged mouse models were used with conditional Mk-specific Chrna7 knockout, pharmacological activation (GTS-21), and Mk reconstitution. IL-33 expression and p38 MAPK signaling were assessed. We found that allergen challenge upregulated α7 nAChR specifically in lung Mks. Mk-specific Chrna7 deletion significantly alleviated allergic airway inflammation, whereas GTS-21 exacerbated inflammation via an Mk-dependent mechanism. Reconstitution with α7 nAChR+ Mks restored airway inflammatory responses. Mechanistically, α7 nAChR activation promoted Mk IL-33 synthesis and secretion through p38 MAPK signaling. Taken together, our results show that α7 nAChR on lung Mks plays a proinflammatory role in allergic airway inflammation, challenging its classical antiinflammatory paradigm and revealing pathogenic mechanisms.

Authors

Hang Wu, Rujia Tao, Shitao Xie, Yao Zhou, Jin-Fu Xu, Zhenwei Xia, Xiao Su

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Figure 8

Activation of α7 nAChR promotes Mk IL-33 expression and release through p38 MAPK signaling pathway.

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Activation of α7 nAChR promotes Mk IL-33 expression and release through ...
(A) The phosphorylation of p38 and p65 was assessed by Western blotting. (B) The phosphorylation of p38 in lung Mks was evaluated in a papain-induced allergic airway inflammation model with GTS-21 intervention by flow cytometry. (C) The phosphorylation of p38 in lung Mks was tested in Chrna7fl/fl and Pf4creChrna7fl/fl mice with papain challenge. (D) The relative mRNA expression of Il33 in lung Mks cultured with GTS-21, papain, and SB203580 was tested by RT-qPCR. (E) The release of IL-33 in supernatant of lung Mks was assessed by ELISA. (F) The relative mRNA expression of IL33 in MEG-01 cultured with GTS-21, papain, and SB203580 was evaluated by RT-qPCR. (G) The expression of IL-33 (35 kDa) protein in MEG-01 cultured with GTS-21, papain, and SB203580 was assessed by Western blotting. Data are representative of at least 3 independent experiments and are presented as mean ± SD (n = 3–5). *P < 0.05; **P < 0.01; ***P < 0.001; ****P < 0.0001 by 1-way ANOVA with Tukey’s post hoc analysis (B–G). NS, not significant.

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