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M2 macrophage‑derived exosomes alleviate KCa3.1 channel expression in rapidly paced HL‑1 myocytes via the NF‑κB
Huiyu Chen1, Huafen Liu1, Dishiwen Liu1
1Department of Cardiology, Renmin Hospital of Wuhan University, Wuhan, Hubei 430060, P.R. China.
Abstract:
The present study was designed to explore the role of M2 macrophage‑derived exosomes (M2‑exos) on the KCa3.1 channel in a cellular atrial fibrillation (AF) model using rapidly paced HL‑1 myocytes. M2 macrophages and M2‑exos were isolated and identified. MicroRNA (miR)‑146a‑5p levels in M2 macrophages and M2‑exos were quantified using reverse transcription‑quantitative PCR (RT‑qPCR). HL‑1 myocytes were randomly divided into six groups: Control group, pacing group, pacing + coculture group (pacing HL‑1 cells cocultured with M2‑exos), pacing + mimic‑miR‑146a‑5p group, pacing + NC‑miR‑146a‑5p group and pacing + pyrrolidine dithiocarbamate (PDTC; a special blocker of the NF‑κB signaling pathway) group. Transmission electron microscopy, nanoparticle tracking analysis, western blotting, RT‑qPCR and immunohistochemistry were performed in the present study. A whole‑cell clamp was also applied to record the current density of KCa3.1 and action potential duration (APD) in each group. The results revealed that miR‑146a‑5p was highly expressed in both M2 macrophages and M2‑exos. Pacing HL‑1 cells led to a shorter APD, an increased KCa3.1 current density and higher protein levels of KCa3.1, phosphorylated (p‑)NF‑κB p65, p‑STAT3 and IL‑1β compared with the control group. M2‑exos, miR‑146a‑5p‑mimic and PDTC both reduced the protein expression of KCa3.1, p‑NF‑κB p65, p‑STAT3 and IL‑1β and the current density of KCa3.1, resulting in a longer APD in the pacing HL‑1 cells. In conclusion, M2‑exos and their cargo, which comprised miR‑146a‑5p, decreased KCa3.1 expression and IL‑1β secretion in pacing HL‑1 cells via the NF‑κB/STAT3 signaling pathway, limiting the shorter APD caused by rapid pacing.
Insights
M2 macrophage-derived exosomes (M2-exos), carrying microRNA-146a-5p, reduce KCa3.1 channel activity and IL-1β secretion in a cellular atrial fibrillation model. This intervention prolongs action potential duration by inhibiting the NF-κB/STAT3 pathway.
Area of Science:
- Cardiovascular Biology
- Cellular Electrophysiology
- Exosome Biology
Background:
- Atrial fibrillation (AF) involves complex cellular mechanisms.
- Macrophage-derived exosomes (M2-exos) are implicated in inflammatory processes.
- The KCa3.1 channel plays a role in cardiac electrical activity.
Purpose of the Study:
- To investigate the effect of M2-exos on the KCa3.1 channel in a cellular AF model.
- To elucidate the role of microRNA-146a-5p (miR-146a-5p) within M2-exos.
- To explore the underlying signaling pathways, including NF-κB/STAT3.
Main Methods:
- HL-1 myocytes were subjected to rapid pacing to model AF.
- M2-exos were isolated and characterized.
- Techniques included RT-qPCR, western blotting, immunohistochemistry, and whole-cell patch clamp.
- Interventions involved M2-exos, miR-146a-5p mimic, and NF-κB inhibitor (PDTC).
Main Results:
- Rapid pacing shortened action potential duration (APD) and increased KCa3.1 current density.
- Pacing elevated protein levels of KCa3.1, p-NF-κB p65, p-STAT3, and IL-1β.
- M2-exos, miR-146a-5p mimic, and PDTC treatment reversed these changes, prolonging APD.
- These treatments reduced KCa3.1 expression and IL-1β secretion.
Conclusions:
- M2-exos, via miR-146a-5p, attenuate KCa3.1 expression and IL-1β secretion in pacing-induced AF cells.
- The NF-κB/STAT3 signaling pathway mediates these effects.
- M2-exos show therapeutic potential for managing AF by normalizing cardiac electrophysiology.
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