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M1 macrophage-derived exosomal miR-126-5p promotes endothelial cell senescence and deep vein thrombosis by targeting
Peiyu Guo1, Kaili Du1, Yu Xiao1
1Department of Orthopaedics, The First Affiliated Hospital of Kunming Medical University, Yunnan Province, China.
Background:
Deep vein thrombosis (DVT) is a vascular complication with a high incidence after trauma and surgery, and its pathogenesis is closely related to vascular endothelial dysfunction. Recent studies have found that M1 macrophage polarization participates in thrombosis through exosome-mediated miRNA delivery, but the specific mechanism has not yet been clarified. This study focuses on the regulatory role of miR-126-5p in M1 macrophage exosomes and its downstream splicing factor SRSF11 in endothelial senescence and DVT.
Methods:
To investigate the regulatory mechanism of miR-126-5p in M1 macrophage exosomes and its downstream splicing factor SRSF11 in vascular endothelial cell senescence and deep vein thrombosis (DVT), this study conducted a series of experiments: THP-1 cells were cultured in vitro and induced into M0 and M1 macrophages. After isolating M1 macrophage exosomes by ultracentrifugation, their characteristics were identified using transmission electron microscopy and Western blot, and the content of miR-126-5p in exosomes was detected by RT-qPCR; fluorescently labeled exosomes were co-cultured with HUVECs, and cell senescence and apoptosis were detected by SA-β-gal staining and flow cytometry. RIP experiments were performed to verify the binding of SRSF11 to Sirt1/P21 precursor mRNA, and functional rescue experiments were conducted to verify the role of SRSF11 or Sirt1-FL; a mouse inferior vena cava ligation DVT model was established in vivo, and miR-126-5p agonists/antagonists were injected in groups. Thrombus conditions and related molecular expressions were analyzed by HE staining, Masson staining, immunofluorescence, TEM, and molecular detection.
Results:
Experimental results showed that in vitro enriched CSCs highly expressed stemness markers and exhibited typical stem cell morphological characteristics. After induction, the expression of polarization markers on the surface of M1 macrophages increased, and the exosomes they secreted had a typical nanovesicle structure and were rich in target miRNAs. Endothelial cells could efficiently uptake exosomes. Overexpression of the target miRNA promoted cell senescence and apoptosis, while inhibition reversed this effect. RIP experiments confirmed that splicing factors bind to target gene mRNA, and the target miRNA upregulates pro-senescence splice variants by inhibiting splicing factors. In the in vivo model, DVT mice developed obvious thrombi. Injection of agonists aggravated thrombosis and collagen deposition, and upregulated senescence-related proteins, while antagonists reversed the above changes, confirming that the target molecule promotes DVT formation by regulating cell senescence.
Conclusion:
M1 macrophages deliver miR-126-5p through exosomes, which target and inhibit the expression of the splicing factor SRSF11, leading to the dysregulation of alternative splicing of the Sirt1/P21 genes (with an increase in pro-aging isoforms), thereby driving endothelial cell senescence and DVT formation. This study is the first to reveal the core role of the "exosomal miRNA-splicing factor-endothelial senescence" axis in DVT, providing a new strategy for targeted intervention.
Insights
M1 macrophage exosomes deliver miR-126-5p, inhibiting SRSF11 and promoting endothelial cell senescence and deep vein thrombosis (DVT). This reveals a novel exosomal miRNA-splicing factor axis in DVT pathogenesis.
Area of Science:
- Vascular Biology
- Cellular Senescence
- Molecular Mechanisms of Thrombosis
Background:
- Deep vein thrombosis (DVT) is a significant vascular complication linked to endothelial dysfunction.
- M1 macrophage polarization and exosome-mediated miRNA delivery are implicated in thrombosis, but mechanisms remain unclear.
- This study investigates miR-126-5p in M1 macrophage exosomes and its role in endothelial senescence and DVT.
Purpose of the Study:
- To elucidate the regulatory role of miR-126-5p within M1 macrophage exosomes.
- To determine the impact of miR-126-5p and its downstream target SRSF11 on endothelial cell senescence.
- To investigate the contribution of this pathway to deep vein thrombosis formation.
Main Methods:
- In vitro induction of M0 and M1 macrophages and isolation of M1 exosomes.
- Characterization of exosomes and quantification of miR-126-5p.
- Co-culture of exosomes with HUVECs to assess senescence and apoptosis.
- RIP assays to confirm SRSF11 binding to Sirt1/P21 precursor mRNA.
- Establishment of a mouse DVT model with in vivo administration of miR-126-5p agonists/antagonists.
Main Results:
- M1 macrophage-derived exosomes were efficiently internalized by endothelial cells.
- miR-126-5p overexpression promoted endothelial cell senescence and apoptosis; inhibition reversed these effects.
- SRSF11 inhibition led to increased pro-senescence splice variants of Sirt1/P21.
- In vivo, miR-126-5p agonists exacerbated DVT, while antagonists attenuated it, correlating with senescence markers.
Conclusions:
- M1 macrophage-derived exosomal miR-126-5p inhibits SRSF11, dysregulating Sirt1/P21 splicing and promoting endothelial senescence.
- This establishes a novel "exosomal miRNA-splicing factor-endothelial senescence" axis in DVT pathogenesis.
- This pathway offers a potential new target for DVT intervention.
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