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Intramyocardial Cell Delivery: Observations in Murine Hearts
Published on: January 24, 2014
New directions in strategies using cell therapy for heart disease
Silviu Itescu1, Michael D Schuster, Alfred A Kocher
1Transplantation Immunology, Columbia-Presbyterian Medical Center, 630 West 168th Street, PH 14 Central, New York, NY 10032, USA. si5@columbia.edu
Insights
Cell therapy for heart failure shows promise. Bone marrow stem cells can regenerate heart muscle and blood vessels, improving cardiac function and preventing remodeling after myocardial infarction.
Area of Science:
- Regenerative Medicine
- Cardiovascular Biology
- Stem Cell Therapy
Background:
- Congestive heart failure is a major health issue, often resulting from cardiomyocyte apoptosis and fibrosis after myocardial infarction, leading to left ventricular remodeling.
- Adult cardiomyocytes typically do not divide, but some human cells can regenerate after ischemic injury, though their origin remains unclear.
- Current strategies for cardiac repair involve stimulating endogenous cardiomyocyte proliferation or implanting exogenous cells, facing challenges like immunogenicity and integration.
Purpose of the Study:
- To explore the potential of cell therapy for ischemic heart disease, focusing on cardiomyocyte regeneration and myocardial revascularization.
- To investigate the role of bone marrow-derived stem cells and angioblasts in cardiac repair after myocardial infarction.
Main Methods:
- Utilizing human adult bone marrow-derived endothelial precursors resembling embryonic angioblasts.
- Inducing infarct bed neovascularization in experimental myocardial infarction models.
- Evaluating the impact on cardiomyocyte apoptosis, proliferation, and cardiac function.
Main Results:
- Bone marrow-derived endothelial precursors promoted infarct bed neovascularization.
- This led to protection against cardiomyocyte apoptosis, induction of cardiomyocyte proliferation, and long-term salvage of viable myocardium.
- Left ventricular remodeling was prevented, and cardiac function was sustained.
Conclusions:
- Cell therapy strategies for ischemic heart disease require a source of functional cardiomyocytes and angioblasts for vascularization.
- Bone marrow-derived stem cells and angioblasts offer a promising approach for cardiac regeneration and functional recovery.
- Combined cell therapy holds potential for treating heart failure by regenerating cardiac muscle and improving blood supply.
Abstract:
Congestive heart failure remains a major public health problem and is frequently the end result of cardiomyocyte apoptosis and fibrous replacement after myocardial infarction, a process referred to as left ventricular remodeling. Cardiomyocytes undergo terminal differentiation soon after birth and are generally considered to irreversibly withdraw from the cell cycle. In response to ischemic insult adult cardiomyocytes undergo cellular hypertrophy, nuclear ploidy, and a high degree of apoptosis. A small number of human cardiomyocytes retain the capacity to proliferate and regenerate in response to ischemic injury. However, whether these cells are derived from a resident pool of cardiomyocyte stem cells or from a renewable source of circulating bone marrow-derived stem cells that home to the damaged myocardium is at present not known. Replacement and regeneration of functional cardiac muscle after an ischemic insult to the heart could be achieved by either stimulating proliferation of endogenous mature cardiomyocytes or resident cardiac stem cells or by implanting exogenous donor-derived or allogeneic cells such as fetal or embryonic cardiomyocyte precursors, bone marrow derived mesenchymal stem cells, or skeletal myoblasts. The newly formed cardiomyocytes must integrate precisely into the existing myocardial wall in order to augment synchronized contractility and avoid potentially life-threatening alterations in the electrical conduction of the heart. A major impediment to survival of the implanted cells is altered immunogenicity by prolonged ex vivo culture conditions. In addition, concurrent myocardial revascularization is required to ensure viability of the repaired region and prevent further scar tissue formation. Human adult bone marrow contains endothelial precursors which resemble embryonic angioblasts and can be used to induce infarct bed neovascularization after experimental myocardial infarction. This results in protection of cardiomyocytes against apoptosis, induction of cardiomyocyte proliferation and regeneration, long-term salvage and survival of viable myocardium, prevention of left ventricular remodeling, and sustained improvement in cardiac function. It is reasonable to anticipate that cell therapy strategies for ischemic heart disease will need to incorporate (a) a renewable source of proliferating, functional cardiomyocytes, and (b) angioblasts to generate a network of capillaries and larger size blood vessels for supply of oxygen and nutrients to both the chronically ischemic endogenous myocardium and to the newly implanted cardiomyocytes
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