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Coronary Artery Ligation and Intramyocardial Injection in a Murine Model of Infarction
Published on: June 7, 2011
Bridging the Gap: Advances and Challenges in Heart Regeneration from In Vitro to In Vivo Applications
Tatsuya Watanabe1, Naoyuki Hatayama2, Marissa Guo1,3
1Center for Regenerative Medicine, The Abigail Wexner Research Institute, Nationwide Children's Hospital, Columbus, OH 43205, USA.
Insights
Developing effective cardiac regeneration therapies for heart disease is crucial. This review explores cardiac patch and stem cell approaches, addressing challenges in long-term graft survival and in vivo application for myocardial repair.
Area of Science:
- Regenerative Medicine
- Cardiovascular Research
- Biomedical Engineering
Background:
- Cardiovascular diseases, especially ischemic heart disease, are a major global health burden.
- Myocardial infarction leads to significant cardiomyocyte loss, inflammation, and adverse ventricular remodeling.
- Current treatments like heart transplantation face donor organ scarcity, necessitating alternative therapies.
Purpose of the Study:
- To review the evolution of cardiac patch and stem cell therapies for cardiovascular disease.
- To identify discrepancies between in vitro and in vivo study findings.
- To discuss critical factors for successful in vivo myocardial tissue regeneration.
Main Methods:
- Literature review of preclinical trials and studies on cardiac regeneration.
- Analysis of stem cell injections, epicardial patches, and interposition grafts.
- Examination of challenges in vascularization and long-term graft survival in large animal models.
Main Results:
- Preclinical studies show positive effects of tissue transplantation on vasculogenesis and function.
- Long-term graft survival in large animal models remains a significant challenge.
- In vitro methods for cell survival via perfusion show promise but face in vivo translation hurdles.
Conclusions:
- Effective cardiac regeneration requires overcoming limitations in vascularization and graft survival.
- Bridging the gap between in vitro success and in vivo efficacy is critical for myocardial repair.
- Further research is needed to establish robust in vivo myocardial tissue regeneration strategies.
Abstract:
Cardiovascular diseases, particularly ischemic heart disease, area leading cause of morbidity and mortality worldwide. Myocardial infarction (MI) results in extensive cardiomyocyte loss, inflammation, extracellular matrix (ECM) degradation, fibrosis, and ultimately, adverse ventricular remodeling associated with impaired heart function. While heart transplantation is the only definitive treatment for end-stage heart failure, donor organ scarcity necessitates the development of alternative therapies. In such cases, methods to promote endogenous tissue regeneration by stimulating growth factor secretion and vascular formation alone are insufficient. Techniques for the creation and transplantation of viable tissues are therefore highly sought after. Approaches to cardiac regeneration range from stem cell injections to epicardial patches and interposition grafts. While numerous preclinical trials have demonstrated the positive effects of tissue transplantation on vasculogenesis and functional recovery, long-term graft survival in large animal models is rare. Adequate vascularization is essential for the survival of transplanted tissues, yet pre-formed microvasculature often fails to achieve sufficient engraftment. Recent studies report success in enhancing cell survival rates in vitro via tissue perfusion. However, the transition of these techniques to in vivo models remains challenging, especially in large animals. This review aims to highlight the evolution of cardiac patch and stem cell therapies for the treatment of cardiovascular disease, identify discrepancies between in vitro and in vivo studies, and discuss critical factors for establishing effective myocardial tissue regeneration in vivo.
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