Exosomes from hypoxic cardiac progenitor cells enhanced endothelial tube formation, decreased profibrotic gene expression, improved cardiac function, and reduced fibrosis.
Do exosomes secreted by hypoxic cardiac progenitor cells improve cardiac function and reduce fibrosis in ischemia-reperfusion injury?
Exosomes secreted by hypoxic cardiac progenitor cells contain specific miRNA clusters that promote angiogenesis, reduce fibrosis, and improve cardiac function following ischemia-reperfusion injury.
RATIONALE: Myocardial infarction is a leading cause of death in developed nations, and there remains a need for cardiac therapeutic systems that mitigate tissue damage. Cardiac progenitor cells (CPCs) and other stem cell types are attractive candidates for treatment of myocardial infarction; however, the benefit of these cells may be as a result of paracrine effects. OBJECTIVE: We tested the hypothesis that CPCs secrete proregenerative exosomes in response to hypoxic conditions. METHODS AND RESULTS: The angiogenic and antifibrotic potential of secreted exosomes on cardiac endothelial cells and cardiac fibroblasts were assessed. We found that CPC exosomes secreted in response to hypoxia enhanced tube formation of endothelial cells and decreased profibrotic gene expression in TGF-β-stimulated fibroblasts, indicating that these exosomes possess therapeutic potential. Microarray analysis of exosomes secreted by hypoxic CPCs identified 11 miRNAs that were upregulated compared with exosomes secreted by CPCs grown under normoxic conditions. Principle component analysis was performed to identify miRNAs that were coregulated in response to distinct exosome-generating conditions. To investigate the cue-signal-response relationships of these miRNA clusters with a physiological outcome of tube formation or fibrotic gene expression, partial least squares regression analysis was applied. The importance of each up- or downregulated miRNA on physiological outcomes was determined. Finally, to validate the model, we delivered exosomes after ischemia-reperfusion injury. Exosomes from hypoxic CPCs improved cardiac function and reduced fibrosis. CONCLUSIONS: These data provide a foundation for subsequent research of the use of exosomal miRNA and systems biology as therapeutic strategies for the damaged heart.
Gray et al. (Sat,) conducted a other in Myocardial infarction / Ischemia-reperfusion injury. Exosomes from hypoxic cardiac progenitor cells vs. Exosomes from normoxic cardiac progenitor cells was evaluated on Angiogenic and antifibrotic potential, cardiac function, and fibrosis. Exosomes from hypoxic cardiac progenitor cells enhanced endothelial tube formation, decreased profibrotic gene expression, improved cardiac function, and reduced fibrosis.
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