Proangiogenic scaffolds as functional templates for cardiac tissue engineering

We demonstrate here a cardiac tissue-engineering strategy addressing multicellular organization, integration into host myocardium, and directional cues to reconstruct the functional architecture of heart muscle. Microtemplating is used to shape poly(2-hydroxyethyl methacrylate-co-methacrylic acid) h...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 2010-08, Vol.107 (34), p.15211-15216
Hauptverfasser: Madden, Lauran R., Mortisen, Derek J., Sussman, Eric M., Dupras, Sarah K., Fugate, James A., Cuy, Janet L., Hauch, Kip D., Laflamme, Michael A., Murry, Charles E., Ratner, Buddy D., Langer, Robert
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Sprache:eng
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Zusammenfassung:We demonstrate here a cardiac tissue-engineering strategy addressing multicellular organization, integration into host myocardium, and directional cues to reconstruct the functional architecture of heart muscle. Microtemplating is used to shape poly(2-hydroxyethyl methacrylate-co-methacrylic acid) hydrogel into a tissue-engineering scaffold with architectures driving heart tissue integration. The construct contains parallel channels to organize cardiomyocyte bundles, supported by micrometer-sized, spherical, interconnected pores that enhance angiogenesis while reducing scarring. Surface-modified scaffolds were seeded with human ES cell-derived cardiomyocytes and cultured in vitro. Cardiomyocytes survived and proliferated for 2 wk in scaffolds, reaching adult heart densities. Cardiac implantation of acellular scaffolds with pore diameters of 30–40 μm showed angiogenesis and reduced fibrotic response, coinciding with a shift in macrophage phenotype toward the M2 state. This work establishes a foundation for spatially controlled cardiac tissue engineering by providing discrete compartments for cardiomyocytes and stroma in a scaffold that enhances vascularization and integration while controlling the inflammatory response.
ISSN:0027-8424
1091-6490
DOI:10.1073/pnas.1006442107