171
73. Lu, Y., Yu, T., Liang, H., Wang, J., Xie, J., Shao, J., et al. (2014). Nitric oxide inhibits heteroadhesion of cancer cells to endothelial cells: Restraining circulating tumor cells from initiating metastatic cascade. Scientific Reports, 4, 1–9. https://doi.org/10.1038/srep04344
74. Lundy, S. D., Zhu, W., Regnier, M., & Laflamme, M. A. (2013). Structural and functional
maturation of cardiomyocytes derived from human pluripotent stem cells. Stem Cells and
Development, 22(14), 1991. https://doi.org/10.1089/scd.2012.0490
75. Mandel, Y., Manivanh, R., Dalal, R., Huie, P., Wang, J., Brinton, M., et al. (2013).
Vasoconstriction by electrical stimulation: New approach to control of non-compressible
hemorrhage. Scientific Reports, 3, 1–7. https://doi.org/10.1038/srep02111
76. Merfeld-Clauss, S., Gollahalli, N., March, K. L., & Traktuev, D. O. (2010). Adipose tissue
progenitor cells directly interact with endothelial cells to induce vascular network formation.
Tissue Engineering. Part A, 16(9), 2953–2966. https://doi.org/10.1089/ten.tea.2009.0635
77. Merfeld-Clauss, S., Lupov, I. P., Lu, H., Feng, D., Compton-Craig, P., March, K. L., et al.
(2014). Adipose stromal cells differentiate along a smooth muscle lineage pathway upon
endothelial cell contact via induction of activin A. Circulation Research, 115(9), 800–809.
https://doi.org/10.1161/CIRCRESAHA.115.304026
78. Miklas, J. W., Nunes, S. S., Sofla, A., Reis, L. A., Pahnke, A., Xiao, Y., et al. (2014). Bioreactor
for modulation of cardiac microtissue phenotype by combined static stretch and electrical
stimulation. Biofabrication, 6(2), 1–27. https://doi.org/10.1088/1758-5082/6/2/024113
79. Montgomery, M., Ahadian, S., Davenport Huyer, L., Lo Rito, M., Civitarese, R. A.,
Vanderlaan, R. D., et al. (2017). Flexible shape-memory scaffold for minimally invasive
delivery of functional tissues. Nature Materials, 16(10), 1038. https://doi.org/10.1038/
nmat4956
80. Montgomery, M., Jiao, Y., Phillips, S., Singh, G., Xu, J., Balsara, R., et al. (1998). Alterations
in sheep fetal right ventricular tissue with induced hemodynamic pressure overload. Basic
Research in Cardiology, 93(3), 192–200.
81. Morgan, K. Y., & Black, L. D. (2014). Mimicking isovolumic contraction with combined
electromechanical stimulation improves the development of engineered cardiac constructs.
Tissue Engineering. Part A, 20(11-12), 1654–1667. https://doi.org/10.1089/ten.tea.2013.0355
82. Morrissette-Mcalmon, J., Blazeski, A., Somers, S., Kostecki, G., Tung, L., & Grayson, W. L.
(2018). Adipose-derived perivascular mesenchymal stromal/stem cells promote functional
vascular tissue engineering for cardiac regenerative purposes. Journal of Tissue Engineering
and Regenerative Medicine, 12, e962. https://doi.org/10.1002/term.2418
83. Naito, A. T., Shiojima, I., Akazawa, H., Hidaka, K., Morisaki, T., Kikuchi, A., et al. (2006).
Developmental stage-specific biphasic roles of Wnt/beta-catenin signaling in cardiomyogenesis and hematopoiesis. Proceedings of the National Academy of Sciences, 103(52), 19812–
19817. https://doi.org/10.1073/pnas.0605768103
84. Nunes, S. S., Miklas, J. W., Liu, J., Aschar-Sobbi, R., Xiao, Y., Zhang, B., et al. (2013).
Biowire: A platform for maturation of human pluripotent stem cell-derived cardiomyocytes.
Nature Methods, 10(8), 781–787. https://doi.org/10.1038/nmeth.2524
85. Ong, C. S., Fukunishi, T., Zhang, H., Huang, C. Y., Nashed, A., Blazeski, A., et al. (2017).
Biomaterial-free three-dimensional bioprinting of cardiac tissue using human induced
pluripotent stem cell derived cardiomyocytes. Scientific Reports, 7(1), 2–12. https://doi.
org/10.1038/s41598-017-05018-4
86. Ott, H. C., Matthiesen, T. S., Goh, S.-K., Black, L. D., Kren, S. M., Netoff, T. I., et al. (2008).
Perfusion-decellularized matrix: Using nature’s platform to engineer a bioartificial heart.
Nature Medicine, 14(2), 213–221. https://doi.org/10.1038/nm1684
87. Park, H.-J., Zhang, Y., Georgescu, S. P., Johnson, K. L., Kong, D., & Galper, J. B. (2006).
Human umbilical vein endothelial cells and human dermal microvascular endothelial cells
offer new insights into the relationship between lipid metabolism and angiogenesis. Stem Cell
Reviews, 2(2), 93–101. https://doi.org/10.1007/s12015-006-0015-x
88. Pedrotty, D. M., Klinger, R. Y., Kirkton, R. D., & Bursac, N. (2009). Cardiac fibroblast paracrine factors alter impulse conduction and ion channel expression of neonatal rat cardiomyocytes. Cardiovascular Research, 83(4), 688–697. https://doi.org/10.1093/cvr/cvp164
6 Strategies for Tissue Engineering Vascularized Cardiac Patches to Treat Myocardial…
73. Lu, Y., Yu, T., Liang, H., Wang, J., Xie, J., Shao, J., et al. (2014). Nitric oxide inhibits heteroadhesion of cancer cells to endothelial cells: Restraining circulating tumor cells from initiating metastatic cascade. Scientific Reports, 4, 1–9. https://doi.org/10.1038/srep04344
74. Lundy, S. D., Zhu, W., Regnier, M., & Laflamme, M. A. (2013). Structural and functional
maturation of cardiomyocytes derived from human pluripotent stem cells. Stem Cells and
Development, 22(14), 1991. https://doi.org/10.1089/scd.2012.0490
75. Mandel, Y., Manivanh, R., Dalal, R., Huie, P., Wang, J., Brinton, M., et al. (2013).
Vasoconstriction by electrical stimulation: New approach to control of non-compressible
hemorrhage. Scientific Reports, 3, 1–7. https://doi.org/10.1038/srep02111
76. Merfeld-Clauss, S., Gollahalli, N., March, K. L., & Traktuev, D. O. (2010). Adipose tissue
progenitor cells directly interact with endothelial cells to induce vascular network formation.
Tissue Engineering. Part A, 16(9), 2953–2966. https://doi.org/10.1089/ten.tea.2009.0635
77. Merfeld-Clauss, S., Lupov, I. P., Lu, H., Feng, D., Compton-Craig, P., March, K. L., et al.
(2014). Adipose stromal cells differentiate along a smooth muscle lineage pathway upon
endothelial cell contact via induction of activin A. Circulation Research, 115(9), 800–809.
https://doi.org/10.1161/CIRCRESAHA.115.304026
78. Miklas, J. W., Nunes, S. S., Sofla, A., Reis, L. A., Pahnke, A., Xiao, Y., et al. (2014). Bioreactor
for modulation of cardiac microtissue phenotype by combined static stretch and electrical
stimulation. Biofabrication, 6(2), 1–27. https://doi.org/10.1088/1758-5082/6/2/024113
79. Montgomery, M., Ahadian, S., Davenport Huyer, L., Lo Rito, M., Civitarese, R. A.,
Vanderlaan, R. D., et al. (2017). Flexible shape-memory scaffold for minimally invasive
delivery of functional tissues. Nature Materials, 16(10), 1038. https://doi.org/10.1038/
nmat4956
80. Montgomery, M., Jiao, Y., Phillips, S., Singh, G., Xu, J., Balsara, R., et al. (1998). Alterations
in sheep fetal right ventricular tissue with induced hemodynamic pressure overload. Basic
Research in Cardiology, 93(3), 192–200.
81. Morgan, K. Y., & Black, L. D. (2014). Mimicking isovolumic contraction with combined
electromechanical stimulation improves the development of engineered cardiac constructs.
Tissue Engineering. Part A, 20(11-12), 1654–1667. https://doi.org/10.1089/ten.tea.2013.0355
82. Morrissette-Mcalmon, J., Blazeski, A., Somers, S., Kostecki, G., Tung, L., & Grayson, W. L.
(2018). Adipose-derived perivascular mesenchymal stromal/stem cells promote functional
vascular tissue engineering for cardiac regenerative purposes. Journal of Tissue Engineering
and Regenerative Medicine, 12, e962. https://doi.org/10.1002/term.2418
83. Naito, A. T., Shiojima, I., Akazawa, H., Hidaka, K., Morisaki, T., Kikuchi, A., et al. (2006).
Developmental stage-specific biphasic roles of Wnt/beta-catenin signaling in cardiomyogenesis and hematopoiesis. Proceedings of the National Academy of Sciences, 103(52), 19812–
19817. https://doi.org/10.1073/pnas.0605768103
84. Nunes, S. S., Miklas, J. W., Liu, J., Aschar-Sobbi, R., Xiao, Y., Zhang, B., et al. (2013).
Biowire: A platform for maturation of human pluripotent stem cell-derived cardiomyocytes.
Nature Methods, 10(8), 781–787. https://doi.org/10.1038/nmeth.2524
85. Ong, C. S., Fukunishi, T., Zhang, H., Huang, C. Y., Nashed, A., Blazeski, A., et al. (2017).
Biomaterial-free three-dimensional bioprinting of cardiac tissue using human induced
pluripotent stem cell derived cardiomyocytes. Scientific Reports, 7(1), 2–12. https://doi.
org/10.1038/s41598-017-05018-4
86. Ott, H. C., Matthiesen, T. S., Goh, S.-K., Black, L. D., Kren, S. M., Netoff, T. I., et al. (2008).
Perfusion-decellularized matrix: Using nature’s platform to engineer a bioartificial heart.
Nature Medicine, 14(2), 213–221. https://doi.org/10.1038/nm1684
87. Park, H.-J., Zhang, Y., Georgescu, S. P., Johnson, K. L., Kong, D., & Galper, J. B. (2006).
Human umbilical vein endothelial cells and human dermal microvascular endothelial cells
offer new insights into the relationship between lipid metabolism and angiogenesis. Stem Cell
Reviews, 2(2), 93–101. https://doi.org/10.1007/s12015-006-0015-x
88. Pedrotty, D. M., Klinger, R. Y., Kirkton, R. D., & Bursac, N. (2009). Cardiac fibroblast paracrine factors alter impulse conduction and ion channel expression of neonatal rat cardiomyocytes. Cardiovascular Research, 83(4), 688–697. https://doi.org/10.1093/cvr/cvp164
6 Strategies for Tissue Engineering Vascularized Cardiac Patches to Treat Myocardial…
