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Updated: Jul 26, 2026

Characterization of Immune Cell-derived Extracellular Vesicles and Studying Functional Impact on Cell Environment
Published on: June 2, 2020
Exosomes activate hippocampal microglia in atrial fibrillation through long-distance heart-brain communication
Xuewen Wang1,2,3,4, Yuanjia Ke1,2,3, Zhen Cao1,2,3
1Department of Cardiology, Renmin Hospital of Wuhan University, 238 Jiefang Road, Wuhan, 430060, Hubei, China.
Insights
Atrial fibrillation (AF) can cause cognitive impairment (CI) by activating brain microglia. AF-derived exosomes carry cfa-miR-22e, which targets IL33 in the hippocampus, leading to CI.
Area of Science:
- Neuroscience
- Cardiology
- Molecular Biology
Background:
- Atrial fibrillation (AF) is increasingly recognized as a risk factor for cognitive impairment (CI) and dementia.
- The precise mechanisms linking AF to CI, independent of stroke, require further elucidation.
Purpose of the Study:
- To investigate the underlying mechanisms of cognitive impairment (CI) induced by atrial fibrillation (AF).
- To explore the role of exosomes derived from epicardial adipose tissue (EAT) in AF-related CI.
Main Methods:
- Established an AF model in canines using rapid atrial pacing and treated with GW4869 to inhibit exosome function.
- Traced EAT-derived exosomes using Ad-CD63-RFP and analyzed their RNA content via sequencing and qRT-PCR.
- Investigated exosome-target interactions using bioinformatics and luciferase assays, and assessed microglial activation in vivo and in vitro.
Main Results:
- AF induction led to increased AF duration and elevated exosomal cfa-miR-22e levels in EAT and hippocampus.
- Downregulation of the target gene IL33 was observed in the hippocampus of AF canines.
- GW4869 treatment mitigated these molecular changes, and in vitro studies confirmed the findings.
Conclusions:
- Epicardial adipose tissue (EAT) in AF canines releases exosomes that cross the blood-brain barrier (BBB).
- These exosomes activate hippocampal microglia via the cfa-miR-22e/IL33 signaling pathway, contributing to cognitive impairment (CI).
Background:
There is growing evidence that atrial fibrillation (AF) is a risk factor for cognitive impairment (CI) and dementia in the presence or absence of stroke. The purpose of this study was to explore the mechanism of CI caused by AF.
Methods:
Eighteen male canines were randomly divided into a sham group, a pacing group, and a pacing + GW4869 group. An experimental model of AF was established by rapid atrial pacing (450 beats/min) for 2 weeks, and the sham group received pacemaker implantation without atrial pacing. The GW4869 group received an intravenous GW4869 injection (0.3 mg/kg, once a day) during pacing. All canines were locally injected with Ad-CD63-RFP in epicardial adipose tissue (EAT) to trace the exosomes. Ultracentrifugation was employed to isolate EAT-derived exosomes, followed by RNA sequencing and quantitative real-time PCR (qRT-PCR) to assess RNA in both exosomes and hippocampal tissue. The miRanda database was used to predict the targeting relationships between miRNA and mRNA, which were further validated by luciferase reporter assays. Western blot analysis was conducted to detect exosomal markers (CD63, CD81, TSG101) in EAT exosomes, while immunofluorescence was used to detect Ad-CD63-RFP signals in both EAT and hippocampal tissues, as well as microglial activation marker IBA-1. To further explore the effects of exosomes on microglial cells, in vitro experiments using brain microvascular endothelial cells (bEnd3) and microglial cells (BV2) were conducted. IBA-1 expression and RNA levels in BV2 cells were analyzed by immunofluorescence and qRT-PCR, respectively.
Results:
After 14 days of pacing of the canine atrium, compared to the sham group, both the pacing and GW4869 groups exhibited an increased number of AF inductions, along with prolonged AF duration. The fluorescence intensity of Ad-CD63-RFP and the microglial activation marker IBA-1 were markedly greater in the hippocampus. RNA sequencing showed that the differentially expressed gene cfa-miR-22e in EAT exosomes was upregulated, and its target gene IL33 was downregulated in the hippocampus. qRT-PCR showed that the levels of cfa-miR-22e were increased in both EAT exosomes and the hippocampus, while the expression of IL-33, a target of cfa-miR-22e, was decreased in the hippocampus. The administration of GW4869 abolished these effects. The in vitro results from bEnd3 and BV2 cell experiments were consistent with the conclusions drawn from the in vivo studies.
Conclusion:
Our study indicated that the exosomes secreted by EAT in canines with AF can penetrate the BBB and activate microglia in the hippocampus through the cfa-miR-22e/IL33 signalling pathway.
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