M1 macrophage-derived exosomal miR-155-5p exacerbates aortic dissection via SMAD5-Mediated regulation of vascular smooth muscle cell phenotype
- Bioact Mater. 2026 Jun 24:65:984-1004. doi: 10.1016/j.bioactmat.2026.05.057.
- 1. Department of Cardiovascular Surgery, Zhongnan Hospital of Wuhan University, Wuhan, 430071, PR China.
- 2. Hubei Provincial Engineering Research Center of Minimally Invasive Cardiovascular Surgery, Wuhan, 430071, PR China.
- 3. Wuhan Clinical Research Center for Minimally Invasive Treatment of Structural Heart Disease, Wuhan, 430071, PR China.
- 4. Department of Anesthesiology, Zhongnan Hospital of Wuhan University, Wuhan, Hubei, 430071, PR China.
- 5. State Key Laboratory of Cardiovascular Disease, Fuwai Hospital, National Center for Cardiovascular Diseases, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, PR China.
- 6. The Cardiomyopathy Research Group, Fuwai Hospital, National Center for Cardiovascular Diseases, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, PR China.
- 7. Department of Cardiovascular Surgery, Fuwai Hospital, National Center for Cardiovascular Diseases, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, PR China.
- 8. Shenzhen Key Laboratory of Cardiovascular Disease, Fuwai Hospital, Chinese Academy of Medical Sciences, PR China.
- 9. State Key Laboratory of Metabolism and Regulation in Complex Organisms, PR China.
Aortic dissection (AD) is a life-threatening cardiovascular emergency characterized by acute aortic wall injury and high mortality, yet effective pharmacological therapies remain limited. Macrophage infiltration and vascular smooth muscle cell (VSMC) phenotypic switching from contractile to synthetic states are central to AD pathogenesis, but the mechanisms mediating intercellular communication between macrophages and VSMCs are incompletely understood. Emerging evidence suggests that exosomes can transfer bioactive miRNAs between cells; however, whether M1 macrophage-derived exosomes promote AD progression through specific miRNA delivery and whether they can be engineered for therapeutic intervention have not been clearly defined. In this study, we demonstrate that M1 macrophage-derived exosomes deliver miR-155-5p to VSMCs, where it targets and suppresses SMAD5, activates the RHOA/ROCK pathway, and drives contractile-to-synthetic phenotypic switching, thereby accelerating AD progression. Through comprehensive physicochemical characterization, including TEM, NTA, Zeta potential, and stability assays, we show that M0 macrophage-derived exosomes can be successfully engineered to load Antago-miR-155-5p via electroporation with favorable encapsulation efficiency and colloidal stability. In a BAPN-induced mouse model of AD, intravenous administration of Antago-miR-155-5p-loaded M0-Exos significantly improved survival, reduced AD incidence and aortic dilation, and restored VSMC contractile markers. Biodistribution studies using DiR and CY5 labeling confirmed efficient accumulation of these engineered exosomes in the injured aorta, while macrophage depletion and rescue experiments validated the pathogenic role of M1-derived exosomes. These findings identify a novel M1 exosome-miR-155-5p-SMAD5/RHOA/ROCK signaling axis in AD and establish engineered M0 macrophage-derived exosomes as a promising bioactive material platform for targeted miRNA therapy in aortic dissection.
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