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Construction of Defined Human Engineered Cardiac Tissues to Study Mechanisms of Cardiac Cell Therapy
Published on: March 1, 2016
Mechanism of improved cardiac function after bone marrow mononuclear cell therapy: role of cardiovascular lineage
Chang-Hwan Yoon1, Masamichi Koyanagi, Kazuma Iekushi
1Institute of Cardiovascular Regeneration, Centre for Molecular Medicine, University of Frankfurt, Germany.
Insights
Bone marrow cells transplanted after heart attack aid recovery by becoming vascular cells. Eliminating these vascular cells worsened heart function, showing their crucial role in recovery.
Area of Science:
- Regenerative Medicine
- Cardiovascular Research
- Cell Biology
Background:
- Cell therapy offers potential for functional recovery post-ischemia.
- Bone marrow-derived cells can reduce infarct size and improve ejection fraction.
- Mechanisms include paracrine effects and cell differentiation into various lineages.
Purpose of the Study:
- To investigate the contribution of differentiated cell lineages from transplanted bone marrow cells to functional recovery after ischemia.
- To determine the specific roles of endothelial, smooth muscle, and cardiomyocyte lineages in cardiac repair.
Main Methods:
- Engineered inducible suicide gene vectors targeting specific cell lineages (endothelium, smooth muscle, cardiomyocyte).
- Used lentiviral thymidine kinase and ganciclovir for selective cell depletion 2 weeks post-transplantation.
- Utilized an acute myocardial infarction model in rats with transplanted bone marrow mononuclear cells.
Main Results:
- Elimination of endothelium-committed or SM22alpha-expressing cells significantly worsened ejection fraction.
- Depletion of cardiac-committed cells did not impact ejection fraction.
- Eliminating endothelial nitric oxide synthase-expressing cells reduced capillary and arteriole density.
Conclusions:
- Transplanted bone marrow mononuclear cells differentiating into vascular lineages contribute functionally to cardiac repair.
- The vascular cell fate decision of bone marrow-derived cells is critical for in vivo functional recovery after myocardial infarction.
Background:
Cell therapy is a promising option to improve functional recovery after ischemia. Several subsets of bone marrow-derived cells were shown to reduce infarct size and increase ejection fraction in experimental models of ischemia. The mechanisms underlying the functional improvement are diverse and have been shown to include paracrine effects of the injected cells, as well as a variable degree of differentiation to endothelial cells, pericytes, smooth muscle, and cardiac muscle.
Methods And Results:
To elucidate the true nature of such plasticity and contribution to recovery, we engineered vectors that encoded inducible suicide genes under the control of endothelium (endothelial nitric oxide synthase)-, smooth muscle (SM22alpha)-, and cardiomyocyte (alpha-MHC)-specific promoters, thereby allowing selective depletion of the individual cell lineage acquired by the transplanted undifferentiated bone marrow-derived cells. Lentivirally delivered thymidine kinase, which converts the prodrug ganciclovir into a cytotoxic agent, was used to selectively eliminate cells 2 weeks after transplantation of bone marrow mononuclear cells in an acute myocardial infarction model. We demonstrate that elimination of transplanted endothelium-committed or SM22alpha-expressing cells, but not cardiac-committed cells, induced a significant deterioration of ejection fraction. Moreover, elimination of endothelial nitric oxide synthase-expressing cells 2 weeks after injection reduced capillary and arteriole density.
Conclusions:
This study demonstrates that elimination of bone marrow mononuclear cells reexpressing endothelial nitric oxide synthase particularly induced a deterioration of cardiac function, which indicates a functional contribution of the vascular cell fate decision of human bone marrow-derived mononuclear cells in vivo.
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