167
8. Bhana, B., Iyer, R. K., Chen, W. L. K., Zhao, R., Sider, K. L., Likhitpanichkul, M., et al.
(2010). Influence of substrate stiffness on the phenotype of heart cells. Biotechnology and
Bioengineering, 105(6), 1148–1160. https://doi.org/10.1002/bit.22647
9. Black, L. D., Meyers, J. D., Weinbaum, J. S., Shvelidze, Y. A., & Tranquillo, R. T. (2009).
Cell-induced alignment augments twitch force in fibrin gel-based engineered myocardium
via gap junction modification. Tissue Engineering. Part A, 15(10), 3099–3108. https://doi.
org/10.1089/ten.TEA.2008.0502
10. Blasi, A., Martino, C., Balducci, L., Saldarelli, M., Soleti, A., Navone, S. E., et al. (2011).
Dermal fibroblasts display similar phenotypic and differentiation capacity to fat-derived mesenchymal stem cells, but differ in anti-inflammatory and angiogenic potential. Vascular Cell,
3(1), 5. https://doi.org/10.1186/2045-824X-3-5
11. Brennan, J., Lu, C. C., Norris, D. P., Rodriguez, T. A., Beddington, R. S., & Robertson, E. J.
(2001). Nodal signaling in the epiblast patterns the early mouse embryo. Nature, 411(6840),
965–969.
12. Burridge, P. W., Matsa, E., Shukla, P., Lin, Z. C., Churko, J. M., Ebert, A. D., et al. (2014).
Chemically defined and small molecule-based generation of human cardiomyocytes. Nature
Methods, 11(8), 855–860. https://doi.org/10.1038/nmeth.2999
13. Caspi, O., Lesman, A., Basevitch, Y., Gepstein, A., Arbel, G., Habib, I. H., et al. (2007). Tissue
engineering of vascularized cardiac muscle from human embryonic stem cells. Circulation
Research, 100, 263–272. https://doi.org/10.1161/01.RES.0000257776.05673.ff
14. Ceccarelli, J., Cheng, A., & Putnam, A. J. (2012). Mechanical strain controls endothelial patterning during angiogenic sprouting. Cellular and Molecular Bioengineering, 5(4), 463–473.
https://doi.org/10.1007/s12195-012-0242-y
15. Chen, X., Aledia, A. S., Popson, S. A., Him, L., Hughes, C. C. W., & George, S. C. (2010).
Rapid anastomosis of endothelial progenitor cell-derived vessels with host vasculature is
promoted by a high density of cotransplanted fibroblasts. Tissue Engineering. Part A, 16(2),
585–594. https://doi.org/10.1089/ten.tea.2009.0491
16. Chiu, L. L. Y., & Radisic, M. (2010). Scaffolds with covalently immobilized VEGF and
Angiopoietin-1 for vascularization of engineered tissues. Biomaterials, 31(2), 226–241.
https://doi.org/10.1016/j.biomaterials.2009.09.039
17. Cho, S.-W., Yang, F., Son, S. M., Park, H. J., Green, J. J., Bogatyrev, S., et al. (2012).
Therapeutic angiogenesis using genetically engineered human endothelial cells. Journal of
Controlled Release, 160(3), 515–524. https://doi.org/10.1016/j.jconrel.2012.03.006
18. Choi, Y. S., Dusting, G. J., Stubbs, S., Arunothayaraj, S., Han, X. L., Collas, P., et
al. (2010). Differentiation of human adipose-derived stem cells into beating cardiomyocytes. Journal of Cellular and Molecular Medicine, 14(4), 878–889. https://doi.
org/10.1111/j.1582-4934.2010.01009.x
19. Chung, C. Y., Bien, H., & Entcheva, E. (2007). The role of cardiac tissue alignment in modulating electrical function. Journal of Cardiovascular Electrophysiology, 18(12), 1323–1329.
https://doi.org/10.1111/j.1540-8167.2007.00959.x
20. Cook, C. A., Huri, P. Y., Ginn, B. P., Gilbert-Honick, J., Somers, S. M., Temple, J. P., et al.
(2016). Characterization of a novel bioreactor system for 3D cellular mechanobiology studies.
Biotechnology and Bioengineering, 113(8), 1825–1837. https://doi.org/10.1002/bit.25946
21. Costa-Almeida, R., Gomez-Lazaro, M., Ramalho, C., Granja, P. L., Soares, R., & Guerreiro,
S. G. (2015). Fibroblast-endothelial partners for vascularization strategies in tissue engineering. Tissue Engineering. Part A, 21(5-6), 1055–1065. https://doi.org/10.1089/ten.
tea.2014.0443
22. Critser, P. J., & Yoder, M. C. (2010). Endothelial colony-forming cell role in neoangiogenesis
and tissue repair. Current Opinion in Organ Transplantation, 15, 68. https://doi.org/10.1097/
MOT.0b013e32833454b5
23. van der Schaft, D. W. J., van Spreeuwel, A. C. C., van Assen, H. C., & Baaijens, F. P. T.
(2011). Mechanoregulation of vascularization in aligned tissue-engineered muscle: A role
for vascular endothelial growth factor. Tissue Engineering. Part A, 17(21-22), 2857–2865.
https://doi.org/10.1089/ten.tea.2011.0214
6 Strategies for Tissue Engineering Vascularized Cardiac Patches to Treat Myocardial…
8. Bhana, B., Iyer, R. K., Chen, W. L. K., Zhao, R., Sider, K. L., Likhitpanichkul, M., et al.
(2010). Influence of substrate stiffness on the phenotype of heart cells. Biotechnology and
Bioengineering, 105(6), 1148–1160. https://doi.org/10.1002/bit.22647
9. Black, L. D., Meyers, J. D., Weinbaum, J. S., Shvelidze, Y. A., & Tranquillo, R. T. (2009).
Cell-induced alignment augments twitch force in fibrin gel-based engineered myocardium
via gap junction modification. Tissue Engineering. Part A, 15(10), 3099–3108. https://doi.
org/10.1089/ten.TEA.2008.0502
10. Blasi, A., Martino, C., Balducci, L., Saldarelli, M., Soleti, A., Navone, S. E., et al. (2011).
Dermal fibroblasts display similar phenotypic and differentiation capacity to fat-derived mesenchymal stem cells, but differ in anti-inflammatory and angiogenic potential. Vascular Cell,
3(1), 5. https://doi.org/10.1186/2045-824X-3-5
11. Brennan, J., Lu, C. C., Norris, D. P., Rodriguez, T. A., Beddington, R. S., & Robertson, E. J.
(2001). Nodal signaling in the epiblast patterns the early mouse embryo. Nature, 411(6840),
965–969.
12. Burridge, P. W., Matsa, E., Shukla, P., Lin, Z. C., Churko, J. M., Ebert, A. D., et al. (2014).
Chemically defined and small molecule-based generation of human cardiomyocytes. Nature
Methods, 11(8), 855–860. https://doi.org/10.1038/nmeth.2999
13. Caspi, O., Lesman, A., Basevitch, Y., Gepstein, A., Arbel, G., Habib, I. H., et al. (2007). Tissue
engineering of vascularized cardiac muscle from human embryonic stem cells. Circulation
Research, 100, 263–272. https://doi.org/10.1161/01.RES.0000257776.05673.ff
14. Ceccarelli, J., Cheng, A., & Putnam, A. J. (2012). Mechanical strain controls endothelial patterning during angiogenic sprouting. Cellular and Molecular Bioengineering, 5(4), 463–473.
https://doi.org/10.1007/s12195-012-0242-y
15. Chen, X., Aledia, A. S., Popson, S. A., Him, L., Hughes, C. C. W., & George, S. C. (2010).
Rapid anastomosis of endothelial progenitor cell-derived vessels with host vasculature is
promoted by a high density of cotransplanted fibroblasts. Tissue Engineering. Part A, 16(2),
585–594. https://doi.org/10.1089/ten.tea.2009.0491
16. Chiu, L. L. Y., & Radisic, M. (2010). Scaffolds with covalently immobilized VEGF and
Angiopoietin-1 for vascularization of engineered tissues. Biomaterials, 31(2), 226–241.
https://doi.org/10.1016/j.biomaterials.2009.09.039
17. Cho, S.-W., Yang, F., Son, S. M., Park, H. J., Green, J. J., Bogatyrev, S., et al. (2012).
Therapeutic angiogenesis using genetically engineered human endothelial cells. Journal of
Controlled Release, 160(3), 515–524. https://doi.org/10.1016/j.jconrel.2012.03.006
18. Choi, Y. S., Dusting, G. J., Stubbs, S., Arunothayaraj, S., Han, X. L., Collas, P., et
al. (2010). Differentiation of human adipose-derived stem cells into beating cardiomyocytes. Journal of Cellular and Molecular Medicine, 14(4), 878–889. https://doi.
org/10.1111/j.1582-4934.2010.01009.x
19. Chung, C. Y., Bien, H., & Entcheva, E. (2007). The role of cardiac tissue alignment in modulating electrical function. Journal of Cardiovascular Electrophysiology, 18(12), 1323–1329.
https://doi.org/10.1111/j.1540-8167.2007.00959.x
20. Cook, C. A., Huri, P. Y., Ginn, B. P., Gilbert-Honick, J., Somers, S. M., Temple, J. P., et al.
(2016). Characterization of a novel bioreactor system for 3D cellular mechanobiology studies.
Biotechnology and Bioengineering, 113(8), 1825–1837. https://doi.org/10.1002/bit.25946
21. Costa-Almeida, R., Gomez-Lazaro, M., Ramalho, C., Granja, P. L., Soares, R., & Guerreiro,
S. G. (2015). Fibroblast-endothelial partners for vascularization strategies in tissue engineering. Tissue Engineering. Part A, 21(5-6), 1055–1065. https://doi.org/10.1089/ten.
tea.2014.0443
22. Critser, P. J., & Yoder, M. C. (2010). Endothelial colony-forming cell role in neoangiogenesis
and tissue repair. Current Opinion in Organ Transplantation, 15, 68. https://doi.org/10.1097/
MOT.0b013e32833454b5
23. van der Schaft, D. W. J., van Spreeuwel, A. C. C., van Assen, H. C., & Baaijens, F. P. T.
(2011). Mechanoregulation of vascularization in aligned tissue-engineered muscle: A role
for vascular endothelial growth factor. Tissue Engineering. Part A, 17(21-22), 2857–2865.
https://doi.org/10.1089/ten.tea.2011.0214
6 Strategies for Tissue Engineering Vascularized Cardiac Patches to Treat Myocardial…
