Current State of the Art in Myocardial Tissue Engineering
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Summary
Although many investigators have favored cardiomyocytes, the potential of other clinically relevant cells is discussed, as well as the various hypotheses proposed to explain the functional benefit of cell transplantation.
- Type
- article
- Published
- 2007-08-01
- Cited by
- 71
- References
- 118
- OpenAlex
- https://openalex.org/W17518754
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:41816110
Keywords
Humanities, Art
References
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- The role of bridge to transplantation: should LVAD patients be transplanted?
Cited by
- The role of mechanical forces in cardiomyocyte differentiation in 3D culture
- Biosynthesis of polyhydroxyalkanoates for cardiac tissue engineering applications
- Acellular and radically polymerized biodegradable materials to control tissue interactions after myocardial infarction
- Engineering Approaches for Studying Myogenesis
- Long-term evaluation of myoblast seeded patches implanted on infarcted rat hearts.
- A study on the effect of mechanical stretch and aligned scaffold architecture on morphology of rat ventricular cells
- Cardiomyocyte behavior on biodegradable polyurethane/gold nanocomposite scaffolds under electrical stimulation.
- Direct jetting approaches for handling stem cells
- Investigation on PEG Integrated Alginate–Chitosan Microcapsules for Myocardial Therapy Using Marrow Stem Cells Genetically Modified by Recombinant Baculovirus
- Biomimetic Three-Dimensional Anisotropic Geometries by Uniaxial Stretch of Poly(ɛ-Caprolactone) Films for Mesenchymal Stem Cell Proliferation, Alignment, and Myogenic Differentiation
- Myocardial Engineering in Vivo: Formation and Characterization of Contractile, Vascularized Three-Dimensional Cardiac Tissue
- Biomimetic poly(glycerol sebacate) (PGS) membranes for cardiac patch application.
- Autologous cell therapy for cardiac repair
- Cardiac Tissue Engineering
- Engineered cell-laden human protein-based elastomer
- Highly Elastic Micropatterned Hydrogel for Engineering Functional Cardiac Tissue
- Cell Therapies for Heart Function Recovery: Focus on Myocardial Tissue Engineering and Nanotechnologies
- Cellular Cardiomyoplasty Using Different Stem Cells in a Single Center
- Tropoelastin - a versatile, bioactive assembly module
- Synthesis, characterization and surface modification of low moduli poly(ether carbonate urethane)ureas for soft tissue engineering.
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