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February 27, 2021Journal of Nanobiotechnology189 citationsOpen Access

Macrophage migration inhibitory factor facilitates the therapeutic efficacy of mesenchymal stem cells derived exosomes in acute myocardial infarction through upregulating miR-133a-3p

WZWenwu ZhuLSLing SunPZPengcheng Zhao

Key Result

MIF-engineered ucMSC-derived exosomes significantly improved cardiac function, promoted angiogenesis, inhibited apoptosis, and reduced fibrosis in infarcted rats compared to control exosomes, mediated by miR-133a-3p upregulation.

Structured PICO

P
Population
Preclinical study using male Sprague Dawley rats (6-8 weeks old) with induced acute myocardial infarction and in vitro cell cultures to evaluate the cardioprotective effects of MIF-engineered ucMSC-derived exosomes.
I
Intervention
Exosomes derived from Macrophage migration inhibitory factor (MIF) engineered umbilical cord mesenchymal stem cells (MIF-Exo).
C
Comparator
PBS, exosomes from non-engineered ucMSCs (MSC-Exo), and exosomes from MIF downregulated ucMSCs (siMIF-Exo).
O
Outcome
Cardiac function (LVEF, LVFS), fibrosis area, angiogenesis, and cardiomyocyte apoptosis.surrogate

MIF-engineered MSC-derived exosomes enhance cardioprotection in acute myocardial infarction by upregulating miR-133a-3p and activating the AKT signaling pathway.

Main Result

p-value: p=<0.05

Limitations

  • Other exosomal miRNAs may also contribute to cardioprotection effects of MIF-Exo.
  • The mechanisms of miR-133a-3p regulation by overexpression of MIF in ucMSCs have not been clarified.
  • Further studies are needed to verify safety and efficacy before clinical use.

Abstract

BACKGROUND: Exosome transplantation is a promising cell-free therapeutic approach for the treatment of ischemic heart disease. The purpose of this study was to explore whether exosomes derived from Macrophage migration inhibitory factor (MIF) engineered umbilical cord MSCs (ucMSCs) exhibit superior cardioprotective effects in a rat model of AMI and reveal the mechanisms underlying it. RESULTS: Exosomes isolated from ucMSCs (MSC-Exo), MIF engineered ucMSCs (MIF-Exo) and MIF downregulated ucMSCs (siMIF-Exo) were used to investigate cellular protective function in human umbilical vein endothelial cells (HUVECs) and H9C2 cardiomyocytes under hypoxia and serum deprivation (H/SD) and infarcted hearts in rats. Compared with MSC-Exo and siMIF-Exo, MIF-Exo significantly enhanced proliferation, migration, and angiogenesis of HUVECs and inhibited H9C2 cardiomyocyte apoptosis under H/SD in vitro. MIF-Exo also significantly inhibited cardiomyocyte apoptosis, reduced fibrotic area, and improved cardiac function as measured by echocardiography in infarcted rats in vivo. Exosomal miRNAs sequencing and qRT-PCR confirmed miRNA-133a-3p significantly increased in MIF-Exo. The biological effects of HUVECs and H9C2 cardiomyocytes were attenuated with incubation of MIF-Exo and miR-133a-3p inhibitors. These effects were accentuated with incubation of siMIF-Exo and miR-133a-3p mimics that increased the phosphorylation of AKT protein in these cells. CONCLUSION: MIF-Exo can provide cardioprotective effects by promoting angiogenesis, inhibiting apoptosis, reducing fibrosis, and preserving heart function in vitro and in vivo. The mechanism in the biological activities of MIF-Exo involves miR-133a-3p and the downstream AKT signaling pathway.

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Cite This Study

Zhu et al. (2021) studied Acute myocardial infarction. MIF-engineered ucMSC-derived exosomes (MIF-Exo) vs. PBS, MSC-Exo, and siMIF-Exo was evaluated on Cardiac function (LVEF and LVFS), fibrosis area, capillary density, and apoptosis (p=<0.05). MIF-engineered ucMSC-derived exosomes significantly improved cardiac function, promoted angiogenesis, inhibited apoptosis, and reduced fibrosis in infarcted rats compared to control exosomes, mediated by miR-133a-3p upregulation.

synapsesocial.com/papers/6aa46116f289da0c50d9ddb3https://doi.org/10.1186/s12951-021-00808-5
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