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α7nAChR on B cells directs T cell differentiation to prevent viral myocarditis
Jing Lu, Keren Chen, Zhihong Cen, Yanlan Huang, Yong Li, LiLi Chen, Weifeng Wu
Jing Lu, Keren Chen, Zhihong Cen, Yanlan Huang, Yong Li, LiLi Chen, Weifeng Wu
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Research Article Cardiology Inflammation

α7nAChR on B cells directs T cell differentiation to prevent viral myocarditis

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Abstract

Patients with viral myocarditis (VMC) exhibit evident autonomic nervous system imbalance, and adverse cardiac remodeling is involved in impaired cholinergic function. The α7 nicotinic acetylcholine receptor (α7nAChR), which is a neurotransmitter receptor, exerts immunoregulatory effects. Recent advances have illuminated the evolution and functions of peripheral and cardiac B cells in heart disease. However, the role of α7nAChR expressed by B cells in the progression of VMC has not been established. We revealed the neuroimmune communication landscape in the heart and found that the phenotypes of cardiac and splenic B cells and their α7nAChR expression changed dynamically during the progression of VMC to dilated cardiomyopathy. α7nAChR on B cells serves as a negative regulator by inhibiting their proinflammatory functions and signaling pathways. B cell–specific α7nAChR deficiency exacerbated myocardial inflammation, fibrosis, and cardiac dysfunction. However, these effects were abrogated in non-B cells from mice with IL-17A knockdown. Enhanced degradation of acetylcholine leads to an imbalance in cholinergic signaling, resulting in impaired neurotransmission. The acetylcholinesterase inhibitor pyridostigmine bromide could improve cardiac remodeling and prevent the progression of VMC to the chronic phase, which was partly dependent on the α7nAChR on B cells. Our findings provide notable insights into cardiac-neural-immune communication during myocardial injury.

Authors

Jing Lu, Keren Chen, Zhihong Cen, Yanlan Huang, Yong Li, LiLi Chen, Weifeng Wu

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Figure 5

α7nAChR on B cells inhibits their role in exacerbating VMC severity and Th17 differentiation.

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α7nAChR on B cells inhibits their role in exacerbating VMC severity and ...
(A) B cell–depleted splenocytes re-supplemented with purified B cells from WT or α7nAChR−/− mice were transferred into SCID mice. (B) The body weight loss, survival, and heart weight/body weight (HW/BW) ratio of each group were monitored over time (n = 10–11 mice/group). Representative flow histograms (C) and quantification (D) of myocardial inflammation and fibrotic area after B cell deficiency and B cell–specific α7nAChR knockout were observed at weeks 2 and 5. Original magnification, ×40. (n = 5 mice/group). Scale bars: 200 μm. (E) The left ventricular ejection fraction (LVEF), left ventricular fractional shortening (LVFS), left ventricular end-diastolic diameter (LVEDD), and left ventricular end-systolic diameter (LVESD) of each group were determined at the endpoint (n = 8–12 mice/group). (F) Representative images of the merge of CD4 and CD20 channels and CD20 and α7nAChR channels; all channels are shown. Original magnification, ×400. Scale bars: 50 μm. Flow cytometric analysis (G) and representative flow cytometric plots (H) of IFN-γ–, IL-10–, and IL-17–producing cardiac and splenic T cells of SCID model mice after B cell deficiency and B cell–specific α7nAChR knockout (n = 5–8 mice/group). The data are represented as the mean ± SD. *P < 0.05; **P < 0.01; ***P < 0.001 by 1-way ANOVA (B [left], D, E, and G) or log-rank (Mantel-Cox) test (B [right]).

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