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α7nAChR activation in AT2 cells promotes alveolar regeneration through WNT7B signaling in acute lung injury
Xiaoyan Chen, Cuiping Zhang, Tianchang Wei, Jie Chen, Ting Pan, Miao Li, Lu Wang, Juan Song, Cuicui Chen, Yan Zhang, Yuanlin Song, Xiao Su
Xiaoyan Chen, Cuiping Zhang, Tianchang Wei, Jie Chen, Ting Pan, Miao Li, Lu Wang, Juan Song, Cuicui Chen, Yan Zhang, Yuanlin Song, Xiao Su
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Research Article Pulmonology Stem cells

α7nAChR activation in AT2 cells promotes alveolar regeneration through WNT7B signaling in acute lung injury

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Abstract

Reducing inflammatory damage and improving alveolar epithelium regeneration are two key approaches to promoting lung repair in acute lung injury/acute respiratory distress syndrome (ALI/ARDS). Stimulation of cholinergic α7 nicotinic acetylcholine receptor (α7nAChR, coded by Chrna7) signaling could dampen lung inflammatory injury. However, whether activation of α7nAChR in alveolar type II (AT2) cells promotes alveolar epithelial injury repair and underlying mechanisms is elusive. Here, we found that α7nAChR was expressed on AT2 cells and was upregulated in response to LPS-induced ALI. Meanwhile, deletion of Chrna7 in AT2 cells impeded lung repair process and worsened lung inflammation in ALI. Using in vivo AT2 lineage–labeled mice and ex vivo AT2 cell–derived alveolar organoids, we demonstrated that activation of α7nAChR expressed on AT2 cells improved alveolar regeneration by promoting AT2 cells to proliferate and subsequently differentiate toward alveolar type I cells. Then, we screened out the WNT7B signaling pathway by the RNA-Seq analysis of in vivo AT2 lineage–labeled cells and further confirmed its indispensability for α7nAChR activation–mediated alveolar epithelial proliferation and differentiation. Thus, we have identified a potentially unrecognized pathway in which cholinergic α7nAChR signaling determines alveolar regeneration and repair, which might provide us a novel therapeutic target for combating ALI.

Authors

Xiaoyan Chen, Cuiping Zhang, Tianchang Wei, Jie Chen, Ting Pan, Miao Li, Lu Wang, Juan Song, Cuicui Chen, Yan Zhang, Yuanlin Song, Xiao Su

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Figure 2

Deletion of Chrna7 on AT2 cells impedes the lung repair process and increases lung proinflammatory responses after lung injury.

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Deletion of Chrna7 on AT2 cells impedes the lung repair process and incr...
(A) PBS or LPS (2.5 mg/kg) was intratracheally (i.t.) delivered to SftpccreChrna7fl/fl mice or Chrna7fl/fl mice and was followed for 7 days. Changes in mice body weight in the Chrna7fl/fl+PBS, Chrna7fl/fl+LPS, SftpccreChrna7fl/fl+PBS, or SftpccreChrna7fl/fl+LPS groups (2-way ANOVA with Šidák’s post hoc analysis). (B) Representative H&E-stained lung sections on day 7 after injury. Insets show high-power images. Scale bars: 100 μm. (C) Lung injury score. (D) Flow cytometric gating strategy for neutrophils and macrophages in lung. (E) The percentage of neutrophils (CD11b+Ly6GhiLy6Cintermediate cells) in lung was determined by flow cytometry on day 7 after injury. (F) The percentage of macrophages (F4/80+ cells) in lung was determined by flow cytometry on day 7 after injury. (G) The relative gene expression of Il6, Il1β, and Tnfα in lung tissue homogenate was tested by qPCR on day 7 after injury. (H) The percentage of neutrophils (Neu), lymphocytes (Lym), monocytes (Mon), and eosinophils (Eos) in the blood was determined using a multispecies hematology instrument on day 7 after injury. One-way ANOVA with Tukey’s post hoc analysis was used in C and E–H. 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).

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