Key result
HGF- or VEGF-engineered MSCs reduce scar size and preserve LVEF after MI in mice.
Why the study?
Mesenchymal stem cell-based regenerative strategies for acute myocardial infarction require optimization to improve left ventricular function and myocardial salvage.
Does gene transfer of HGF or VEGF into mesenchymal stem cells improve left ventricular function and reduce scar size in a murine model of acute myocardial infarction?
Does gene transfer of HGF or VEGF into mesenchymal stem cells improve left ventricular function and reduce scar size in a murine model of acute myocardial infarction?
Overexpressing HGF or VEGF in mesenchymal stem cells maximizes myocardial salvage, reduces scar size, and preserves left ventricular function in a murine model of acute myocardial infarction.
Should not change post-MI care; leaves open translation of engineered MSCs from murine models.
BACKGROUND: Mesenchymal stem cell (MSC)-based regenerative strategies were investigated to treat acute myocardial infarction and improve left ventricular function. METHODS AND RESULTS: Murine AMI was induced by coronary ligation with subsequent injection of MSCs, hepatocyte growth factor (HGF), vascular endothelial growth factor (VEGF), or MSCs +HGF/VEGF into the border zone. Left ventricular ejection fraction was calculated using micro-computed tomography imaging after 6 months. HGF and VEGF protein injection (with or without concomitant MSC injection) significantly and similarly improved the left ventricular ejection fraction and reduced scar size compared with the MSC group, suggesting that myocardial recovery was due to the cytokines rather than myocardial regeneration. To provide sustained paracrine effects, HGF or VEGF overexpressing MSCs were generated (MSC-HGF, MSC-VEGF). MSC-HGF and MSC-VEGF showed significantly increased in vitro proliferation and increased in vivo proliferation within the border zone. Cytokine production correlated with MSC survival. MSC-HGF- and MSC-VEGF-treated animals showed smaller scar sizes, increased peri-infarct vessel densities, and better preserved left ventricular function when compared with MSCs transfected with empty vector. Murine cardiomyocytes were exposed to hypoxic in vitro conditions. The LDH release was reduced, fewer cardiomyocytes were apoptotic, and Akt activity was increased if cardiomyocytes were maintained in conditioned medium obtained from MSC-HGF or MSC-VEGF cultures. CONCLUSIONS: This study showed that (1) elevating the tissue levels of HGF and VEGF after acute myocardial infarction seems to be a promising reparative therapeutic approach, (2) HGF and VEGF are cardioprotective by increasing the tolerance of cardiomyocytes to ischemia, reducing cardiomyocyte apoptosis and increasing prosurvival Akt activation, and (3) MSC-HGF and MSC-VEGF are a valuable source for increased cytokine production and maximize the beneficial effect of MSC-based repair strategies.
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Deuse et al. (2009) studied Acute myocardial infarction (murine model). HGF or VEGF overexpressing mesenchymal stem cells (MSC-HGF, MSC-VEGF) vs. MSCs transfected with empty vector was evaluated on Left ventricular ejection fraction and scar size. In a murine model of acute myocardial infarction, treatment with HGF or VEGF overexpressing mesenchymal stem cells reduced scar size and better preserved left ventricular function compared with empty vector MSCs.
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