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Volumn 1, Issue 3, 2014, Pages 122-136

3D-printed hydrogel technologies for tissue-engineered heart valves

Author keywords

[No Author keywords available]

Indexed keywords

3D PRINTERS; BLOOD VESSELS; CELL CULTURE; GEOMETRY; HYDROGELS; STEM CELLS; TISSUE;

EID: 84991794169     PISSN: 23297662     EISSN: 23297670     Source Type: Journal    
DOI: 10.1089/3dp.2014.0018     Document Type: Article
Times cited : (32)

References (101)
  • 1
    • 84858779329 scopus 로고    scopus 로고
    • Toward engineering functional organ modules by additive manufacturing
    • Marga F, Jakab K, Khatiwala C, et al. Toward engineering functional organ modules by additive manufacturing. Biofabrication 2012; 4: 022001
    • (2012) Biofabrication , vol.4 , pp. 022001
    • Marga, F.1    Jakab, K.2    Khatiwala, C.3
  • 2
    • 69249208450 scopus 로고    scopus 로고
    • Scaffold-free vascular tissue engineering using bioprinting
    • Norotte C, Marga FS, Niklason LE, Forgacs G. Scaffold-free vascular tissue engineering using bioprinting. Biomaterials 2009; 30: 5910-5917
    • (2009) Biomaterials , vol.30 , pp. 5910-5917
    • Norotte, C.1    Marga, F.S.2    Niklason, L.E.3    Forgacs, G.4
  • 3
    • 0037409864 scopus 로고    scopus 로고
    • Solid freeform fabrication of three -dimensional scaffolds for engineering replacement tissues and organs
    • Leong KF, Cheah CM, Chua CK. Solid freeform fabrication of three -dimensional scaffolds for engineering replacement tissues and organs. Biomaterials 2003; 24: 2363-2378
    • (2003) Biomaterials , vol.24 , pp. 2363-2378
    • Leong, K.F.1    Cheah, C.M.2    Chua, C.K.3
  • 4
    • 42749097087 scopus 로고    scopus 로고
    • Three -dimensional micropatterning of bioactive hydrogels via two-photon laser scanning photolithography for guided 3D cell migration
    • Lee SH, Moon JJ, West JL. Three -dimensional micropatterning of bioactive hydrogels via two-photon laser scanning photolithography for guided 3D cell migration. Biomaterials 2008; 29: 2962-2968
    • (2008) Biomaterials , vol.29 , pp. 2962-2968
    • Lee, S.H.1    Moon, J.J.2    West, J.L.3
  • 5
    • 84871382127 scopus 로고    scopus 로고
    • Photo-sensitive hydrogels for three -dimensional laser microfabrication in the presence of whole organisms
    • Torgersen J, Ovsianikov A, Mironov V, et al. Photo-sensitive hydrogels for three -dimensional laser microfabrication in the presence of whole organisms. J Biomed Optics 2012; 17: 105008
    • (2012) J Biomed Optics , vol.17 , pp. 105008
    • Torgersen, J.1    Ovsianikov, A.2    Mironov, V.3
  • 6
  • 8
    • 84873385295 scopus 로고    scopus 로고
    • Evaluation of osteoconductive scaffolds in the canine femoral multi -defect model
    • Luangphakdy V, Walker E, Shinohara K, et al. Evaluation of osteoconductive scaffolds in the canine femoral multi -defect model. Tissue Eng Part A 2013; 19: 634-648
    • (2013) Tissue Eng Part A , vol.19 , pp. 634-648
    • Luangphakdy, V.1    Walker, E.2    Shinohara, K.3
  • 9
    • 84861199493 scopus 로고    scopus 로고
    • Skin tissue generation by laser cell printing
    • Koch L, Deiwick A, Schlie S, et al. Skin tissue generation by laser cell printing. Biotechnol Bioeng 2012; 109: 1855-1863
    • (2012) Biotechnol Bioeng , vol.109 , pp. 1855-1863
    • Koch, L.1    Deiwick, A.2    Schlie, S.3
  • 10
    • 74449086988 scopus 로고    scopus 로고
    • In vitro engineering of human ear-shaped cartilage assisted with CAD/CAM technology
    • Liu Y, Zhang L, Zhou GD, et al. In vitro engineering of human ear-shaped cartilage assisted with CAD/CAM technology. Biomaterials 2010; 31: 2176-2183
    • (2010) Biomaterials , vol.31 , pp. 2176-2183
    • Liu, Y.1    Zhang, L.2    Zhou, G.D.3
  • 11
    • 84874235737 scopus 로고    scopus 로고
    • High-fidelity tissue engineering of patient-specific auricles for reconstruction of pediatric microtia and other auricular deformities
    • Reiffel AJ, Kafka C, Hernandez KA, et al. High-fidelity tissue engineering of patient-specific auricles for reconstruction of pediatric microtia and other auricular deformities. Plos One 2013; 8: e56506
    • (2013) Plos One , vol.8 , pp. e56506
    • Reiffel, A.J.1    Kafka, C.2    Hernandez, K.A.3
  • 12
    • 46449084283 scopus 로고    scopus 로고
    • Image-guided tissue engineering of anatomically shaped implants via MRI and micro-CT using injection molding
    • Ballyns JJ, Gleghorn JP, Niebrzydowski V, et al. Image-guided tissue engineering of anatomically shaped implants via MRI and micro-CT using injection molding. Tissue Eng Part A 2008; 14: 1195-1202
    • (2008) Tissue Eng Part A , vol.14 , pp. 1195-1202
    • Ballyns, J.J.1    Gleghorn, J.P.2    Niebrzydowski, V.3
  • 13
    • 84918811294 scopus 로고    scopus 로고
    • In-body tissue-engineered aortic valve (Biovalve type VII) architecture based on 3D printer molding
    • Epub ahead of print
    • Nakayama Y, Takewa Y, Sumikura H, et al. In-body tissue-engineered aortic valve (Biovalve type VII) architecture based on 3D printer molding. J Biomed Mater Res Part B Appl Biomater 2014. [Epub ahead of print]; doi: 10.1002/jbm.b.33186
    • (2014) J Biomed Mater Res Part B Appl Biomater
    • Nakayama, Y.1    Takewa, Y.2    Sumikura, H.3
  • 14
    • 84897576041 scopus 로고    scopus 로고
    • In vitro evaluation of a novel autologous aortic valve (biovalve) with a pulsatile circulation circuit
    • Sumikura H, Nakayama Y, Ohnuma K, et al. In vitro evaluation of a novel autologous aortic valve (biovalve) with a pulsatile circulation circuit. Artif Organs 2014; 38: 282-289
    • (2014) Artif Organs , vol.38 , pp. 282-289
    • Sumikura, H.1    Nakayama, Y.2    Ohnuma, K.3
  • 15
    • 33745786636 scopus 로고    scopus 로고
    • Direct freeform fabrication of seeded hydrogels in arbitrary geometries
    • Cohen DL, Malone E, Lipson H, Bonassar LJ. Direct freeform fabrication of seeded hydrogels in arbitrary geometries. Tissue Eng 2006; 12: 1325-1335
    • (2006) Tissue Eng , vol.12 , pp. 1325-1335
    • Cohen, D.L.1    Malone, E.2    Lipson, H.3    Bonassar, L.J.4
  • 16
    • 82055196987 scopus 로고    scopus 로고
    • Bioprinting of hybrid tissue constructs with tailorable mechanical properties
    • Schuurman W, Khristov V, Pot MW, et al. Bioprinting of hybrid tissue constructs with tailorable mechanical properties. Biofabrication 2011; 3: 021001
    • (2011) Biofabrication , vol.3 , pp. 021001
    • Schuurman, W.1    Khristov, V.2    Pot, M.W.3
  • 17
    • 84898059103 scopus 로고    scopus 로고
    • Three-dimensional printed trileaflet valve conduits using biological hydrogels and human valve interstitial cells
    • Duan B, Kapetanovic E, Hockaday LA, Butcher JT. Three-dimensional printed trileaflet valve conduits using biological hydrogels and human valve interstitial cells. Acta Biomater 2014; 10: 1836-1846
    • (2014) Acta Biomater , vol.10 , pp. 1836-1846
    • Duan, B.1    Kapetanovic, E.2    Hockaday, L.A.3    Butcher, J.T.4
  • 18
    • 77953651709 scopus 로고    scopus 로고
    • Bioprinting vessel-like constructs using hyaluronan hydrogels crosslinked with tetrahedral polyethylene glycol tetracrylates
    • Skardal A, Zhang J, Prestwich GD. Bioprinting vessel-like constructs using hyaluronan hydrogels crosslinked with tetrahedral polyethylene glycol tetracrylates. Biomaterials 2010; 31: 6173-6181
    • (2010) Biomaterials , vol.31 , pp. 6173-6181
    • Skardal, A.1    Zhang, J.2    Prestwich, G.D.3
  • 19
    • 84900988712 scopus 로고    scopus 로고
    • 3D bioprinting of vascularized, heterogeneous cell-laden tissue constructs
    • Kolesky DB, Truby RL, Gladman AS, et al. 3D bioprinting of vascularized, heterogeneous cell-laden tissue constructs. Adv Mater 2014; 26: 3124-3130
    • (2014) Adv Mater , vol.26 , pp. 3124-3130
    • Kolesky, D.B.1    Truby, R.L.2    Gladman, A.S.3
  • 20
    • 83555177196 scopus 로고    scopus 로고
    • Cardiac tissue engineering using tissue printing technology and human cardiac progenitor cells
    • Gaetani R, Doevendans PA, Metz CHG, et al. Cardiac tissue engineering using tissue printing technology and human cardiac progenitor cells. Biomaterials 2012; 33: 1782-1790
    • (2012) Biomaterials , vol.33 , pp. 1782-1790
    • Gaetani, R.1    Doevendans, P.A.2    Chg, M.3
  • 21
    • 84991764381 scopus 로고    scopus 로고
    • In vivo assessment of printed microvasculature in a bilayer skin graft to treat full-Thickness wounds
    • Epub ahead of print
    • Yanez M, Rincon JE, Dones A, et al. In vivo assessment of printed microvasculature in a bilayer skin graft to treat full-Thickness wounds. Tissue Eng Part A 2014. [Epub ahead of print]
    • (2014) Tissue Eng Part A
    • Yanez, M.1    Rincon, J.E.2    Dones, A.3
  • 22
    • 33644880790 scopus 로고    scopus 로고
    • Generation of three-dimensional hepatocyte/gelatin structures with rapid prototyping system
    • Wang XH, Yan YN, Pan YQ, et al. Generation of three-dimensional hepatocyte/gelatin structures with rapid prototyping system. Tissue Eng 2006; 12: 83-90
    • (2006) Tissue Eng , vol.12 , pp. 83-90
    • Wang, X.H.1    Yan, Y.N.2    Pan, Y.Q.3
  • 23
    • 77952545276 scopus 로고    scopus 로고
    • Bio -printing of collagen and VEGF-releasing fibrin gel scaffolds for neural stem cell culture
    • Lee YB, Polio S, Lee W, et al. Bio -printing of collagen and VEGF-releasing fibrin gel scaffolds for neural stem cell culture. Exp Neurol 2010; 223: 645-652
    • (2010) Exp Neurol , vol.223 , pp. 645-652
    • Lee, Y.B.1    Polio, S.2    Lee, W.3
  • 25
    • 84855396802 scopus 로고    scopus 로고
    • Biofabrication of osteochondral tissue equivalents by printing topologically defined, cell-laden hydrogel scaffolds
    • Fedorovich NE, Schuurman W, Wijnberg HM, et al. Biofabrication of osteochondral tissue equivalents by printing topologically defined, cell-laden hydrogel scaffolds. Tissue Eng Part C Methods 2012; 18: 33-44
    • (2012) Tissue Eng Part C Methods , vol.18 , pp. 33-44
    • Fedorovich, N.E.1    Schuurman, W.2    Wijnberg, H.M.3
  • 26
    • 79960782567 scopus 로고    scopus 로고
    • Distinct tissue formation by heterogeneous printing of osteo-And endothelial progenitor cells
    • Fedorovich NE, Wijnberg HM, Dhert WJ, Alblas J. Distinct tissue formation by heterogeneous printing of osteo-And endothelial progenitor cells. Tissue Eng Part A 2011; 17: 2113-2121
    • (2011) Tissue Eng Part A , vol.17 , pp. 2113-2121
    • Fedorovich, N.E.1    Wijnberg, H.M.2    Dhert, W.J.3    Alblas, J.4
  • 27
    • 84903964392 scopus 로고    scopus 로고
    • Engineering anisotropic biomimetic fibrocartilage microenvironment by bioprinting mesenchymal stem cells in nanoliter gel droplets
    • Gurkan UA, El Assal R, Yildiz SE, et al. Engineering anisotropic biomimetic fibrocartilage microenvironment by bioprinting mesenchymal stem cells in nanoliter gel droplets. Mol Pharm 2014; 11: 2151-2159
    • (2014) Mol Pharm , vol.11 , pp. 2151-2159
    • Gurkan, U.A.1    El Assal, R.2    Yildiz, S.E.3
  • 28
    • 78651461427 scopus 로고    scopus 로고
    • Dynamic compressive loading of image-guided tissue engineered meniscal constructs
    • Ballyns JJ, Bonassar LJ. Dynamic compressive loading of image-guided tissue engineered meniscal constructs. J Biomech 2011; 44: 509-516
    • (2011) J Biomech , vol.44 , pp. 509-516
    • Ballyns, J.J.1    Bonassar, L.J.2
  • 29
    • 79957869196 scopus 로고    scopus 로고
    • Aortic valve disease and treatment: The need for naturally engineered solutions
    • Butcher JT, Mahler GJ, Hockaday LA. Aortic valve disease and treatment: the need for naturally engineered solutions. Adv Drug Deliv Rev 2011; 63: 242-268
    • (2011) Adv Drug Deliv Rev , vol.63 , pp. 242-268
    • Butcher, J.T.1    Mahler, G.J.2    Hockaday, L.A.3
  • 30
    • 33645841647 scopus 로고    scopus 로고
    • Design and analysis of tissue engineering scaffolds that mimic soft tissue mechanical anisotropy
    • Courtney T, Sacks MS, Stankus J, et al. Design and analysis of tissue engineering scaffolds that mimic soft tissue mechanical anisotropy. Biomaterials 2006; 27: 3631-3638
    • (2006) Biomaterials , vol.27 , pp. 3631-3638
    • Courtney, T.1    Sacks, M.S.2    Stankus, J.3
  • 31
    • 0345325571 scopus 로고    scopus 로고
    • Deformational dynamics of the aortic root: Modes and physiologic determinants
    • Dagum P, Green GR, Nistal FJ, et al. Deformational dynamics of the aortic root: modes and physiologic determinants. Circulation 1999; 100: II54-II62
    • (1999) Circulation , vol.100 , pp. II54-II62
    • Dagum, P.1    Green, G.R.2    Nistal, F.J.3
  • 32
    • 5144233686 scopus 로고    scopus 로고
    • Porcine aortic valve interstitial cells in three -dimensional culture: Comparison of phenotype with aortic smooth muscle cells
    • discussion 485-486
    • Butcher JT, Nerem RM. Porcine aortic valve interstitial cells in three -dimensional culture: comparison of phenotype with aortic smooth muscle cells. J Heart Valve Dis 2004; 13: 478-485; discussion 485-486
    • (2004) J Heart Valve Dis , vol.13 , pp. 478-485
    • Butcher, J.T.1    Nerem, R.M.2
  • 33
    • 3943101416 scopus 로고    scopus 로고
    • Unique morphology and focal adhesion development of valvular endothelial cells in static and fluid flow environments
    • Butcher JT, Penrod AM, Garcia AJ, Nerem RM. Unique morphology and focal adhesion development of valvular endothelial cells in static and fluid flow environments. Arterioscler Thromb Vasc Biol 2004; 24: 1429-1434
    • (2004) Arterioscler Thromb Vasc Biol , vol.24 , pp. 1429-1434
    • Butcher, J.T.1    Penrod, A.M.2    Garcia, A.J.3    Nerem, R.M.4
  • 34
    • 33646564670 scopus 로고    scopus 로고
    • Valvular endothelial cells regulate the phenotype of interstitial cells in co-culture: Effects of steady shear stress
    • Butcher JT, Nerem RM. Valvular endothelial cells regulate the phenotype of interstitial cells in co-culture: effects of steady shear stress. Tissue Eng 2006; 12: 905-915
    • (2006) Tissue Eng , vol.12 , pp. 905-915
    • Butcher, J.T.1    Nerem, R.M.2
  • 35
    • 84893651437 scopus 로고    scopus 로고
    • Heart disease and stroke statistics-2014 update: A report from the American Heart Association
    • Go AS, Mozaffarian D, Roger VL, et al. Heart disease and stroke statistics-2014 update: a report from the American Heart Association. Circulation 2014; 129: e28-e292
    • (2014) Circulation , vol.129 , pp. e28-e292
    • Go, A.S.1    Mozaffarian, D.2    Roger, V.L.3
  • 36
    • 79958124564 scopus 로고    scopus 로고
    • Molecular and developmental mechanisms of congenital heart valve disease
    • Lincoln J, Yutzey KE. Molecular and developmental mechanisms of congenital heart valve disease. Birth Defects Res A Clin Mol Teratol 2011; 91: 526-534
    • (2011) Birth Defects Res A Clin Mol Teratol , vol.91 , pp. 526-534
    • Lincoln, J.1    Yutzey, K.E.2
  • 38
    • 84862985792 scopus 로고    scopus 로고
    • Valvular heart diseases in the developing world: Developmental biology takes center stage
    • Farrar EJ, Butcher JT. Valvular heart diseases in the developing world: developmental biology takes center stage. J Heart Valve Dis 2012; 21: 234-240
    • (2012) J Heart Valve Dis , vol.21 , pp. 234-240
    • Farrar, E.J.1    Butcher, J.T.2
  • 39
    • 33748413049 scopus 로고    scopus 로고
    • New frontiers in the pathology and therapy of heart valve disease 2006 Society for Cardiovascular Pathology, Distinguished Achievement Award Lecture, United States-Canadian Academy of Pathology
    • Atlanta, GA, February 12, 2006
    • Schoen FJ. New frontiers in the pathology and therapy of heart valve disease: 2006 Society for Cardiovascular Pathology, Distinguished Achievement Award Lecture, United States-Canadian Academy of Pathology, Atlanta, GA, February 12, 2006. Cardiovasc Pathol 2006; 15: 271-279
    • Cardiovasc Pathol , vol.2006 , Issue.15 , pp. 271-279
    • Schoen, F.J.1
  • 40
    • 33644874293 scopus 로고    scopus 로고
    • Outcomes and associated risk factors for aortic valve replacement in 160 children: A competing-risks analysis
    • Karamlou T, Jang K, Williams WG, et al. Outcomes and associated risk factors for aortic valve replacement in 160 children: a competing-risks analysis. Circulation 2005; 112: 3462-3469
    • (2005) Circulation , vol.112 , pp. 3462-3469
    • Karamlou, T.1    Jang, K.2    Williams, W.G.3
  • 41
    • 0034048233 scopus 로고    scopus 로고
    • Tissue-engineered valved conduits in the pulmonary circulation
    • Stock UA, Nagashima M, Khalil PN, et al. Tissue-engineered valved conduits in the pulmonary circulation. J Thorac Cardiovasc Surg 2000; 119: 732-740
    • (2000) J Thorac Cardiovasc Surg , vol.119 , pp. 732-740
    • Stock, U.A.1    Nagashima, M.2    Khalil, P.N.3
  • 42
    • 20344391403 scopus 로고    scopus 로고
    • From stem cells to viable autologous semilunar heart valve
    • Sutherland FW, Perry TE, Yu Y, et al. From stem cells to viable autologous semilunar heart valve. Circulation 2005; 111: 2783-2791
    • (2005) Circulation , vol.111 , pp. 2783-2791
    • Sutherland, F.W.1    Perry, T.E.2    Yu, Y.3
  • 43
    • 0034619558 scopus 로고    scopus 로고
    • Functional living trileaflet heart valves grown in vitro .
    • Hoerstrup SP, Sodian R, Daebritz S, et al. Functional living trileaflet heart valves grown in vitro . Circulation 2000; 102: III44-III49
    • (2000) Circulation , vol.102 , pp. III44-III49
    • Hoerstrup, S.P.1    Sodian, R.2    Daebritz, S.3
  • 45
    • 33747200871 scopus 로고    scopus 로고
    • Living autologous heart valves engineered from human prenatally harvested progenitors
    • Schmidt D, Mol A, Breymann C, et al. Living autologous heart valves engineered from human prenatally harvested progenitors. Circulation 2006; 114: I125-I131
    • (2006) Circulation , vol.114 , pp. I125-I131
    • Schmidt, D.1    Mol, A.2    Breymann, C.3
  • 46
    • 77049103663 scopus 로고    scopus 로고
    • Endothelial progenitor cells as a sole source for ex vivo seeding of tissue -engineered heart valves
    • Sales VL, Mettler BA, Engelmayr GC Jr., et al. Endothelial progenitor cells as a sole source for ex vivo seeding of tissue -engineered heart valves. Tissue Eng Part A 2010; 16: 257-267
    • (2010) Tissue Eng Part A , vol.16 , pp. 257-267
    • Sales, V.L.1    Mettler, B.A.2    Engelmayr, G.C.3
  • 47
    • 78650913518 scopus 로고    scopus 로고
    • Assembly and testing of stem cell -seeded layered collagen constructs for heart valve tissue engineering
    • Tedder ME, Simionescu A, Chen J, et al. Assembly and testing of stem cell -seeded layered collagen constructs for heart valve tissue engineering. Tissue Eng Part A 2011; 17: 25-36
    • (2011) Tissue Eng Part A , vol.17 , pp. 25-36
    • Tedder, M.E.1    Simionescu, A.2    Chen, J.3
  • 48
    • 26944451302 scopus 로고    scopus 로고
    • Microintegrating smooth muscle cells into a biodegradable, elastomeric fiber matrix
    • Stankus JJ, Guan J, Fujimoto K, Wagner WR. Microintegrating smooth muscle cells into a biodegradable, elastomeric fiber matrix. Biomaterials 2006; 27: 735-744
    • (2006) Biomaterials , vol.27 , pp. 735-744
    • Stankus, J.J.1    Guan, J.2    Fujimoto, K.3    Wagner, W.R.4
  • 49
    • 34547399078 scopus 로고    scopus 로고
    • Fab @ Home: The personal desktop fabricator kit
    • Malone E, Lipson H. Fab @ Home: the personal desktop fabricator kit. Rapid Prototyping J 2007; 13: 244-255
    • (2007) Rapid Prototyping J , vol.13 , pp. 244-255
    • Malone, E.1    Lipson, H.2
  • 50
    • 84885729106 scopus 로고    scopus 로고
    • Construction and adaptation of an open source rapid prototyping machine for biomedical research purposes-A multinational collaborative development
    • Bartolo PJ et al. editors London CRC Press
    • Lixandrao Filho AL, Cheung PYC, Noritomi PY et al. Construction and Adaptation of an Open Source Rapid Prototyping Machine for Biomedical Research Purposes-A Multinational Collaborative Development. In: Bartolo PJ et al. editors. Innovative Developments in Virtual and Physical Prototyping. London: CRC Press 2009
    • (2009) Innovative Developments in Virtual and Physical Prototyping
    • Lixandrao Filho, A.L.1    Pyc, C.2    Noritomi, P.Y.3
  • 51
    • 84866055893 scopus 로고    scopus 로고
    • Rapid 3D printing of anatomically accurate and mechanically heterogeneous aortic valve hydrogel scaffolds
    • Hockaday LA, Kang KH, Colangelo NW, et al. Rapid 3D printing of anatomically accurate and mechanically heterogeneous aortic valve hydrogel scaffolds. Biofabrication 2012; 4: 035005
    • (2012) Biofabrication , vol.4 , pp. 035005
    • Hockaday, L.A.1    Kang, K.H.2    Colangelo, N.W.3
  • 52
    • 84883110864 scopus 로고    scopus 로고
    • Quantitative optimization of solid freeform deposition of aqueous hydrogels
    • Kang KH, Hockaday LA, Butcher JT. Quantitative optimization of solid freeform deposition of aqueous hydrogels. Biofabrication 2013; 5: 035001
    • (2013) Biofabrication , vol.5 , pp. 035001
    • Kang, K.H.1    Hockaday, L.A.2    Butcher, J.T.3
  • 53
    • 77954990589 scopus 로고    scopus 로고
    • An optical method for evaluation of geometric fidelity for anatomically shaped tissue-engineered constructs
    • Ballyns JJ, Cohen DL, Malone E, et al. An optical method for evaluation of geometric fidelity for anatomically shaped tissue-engineered constructs. Tissue Eng Part C 2010; 16: 693-703
    • (2010) Tissue Eng Part C , vol.16 , pp. 693-703
    • Ballyns, J.J.1    Cohen, D.L.2    Malone, E.3
  • 54
    • 84883110864 scopus 로고    scopus 로고
    • Quantitative optimization of solid freeform deposition of aqueous hydrogels
    • Kang KH, Hockaday LA, Butcher JT. Quantitative optimization of solid freeform deposition of aqueous hydrogels. Biofabrication 2013; 5: 035001
    • (2013) Biofabrication , vol.5 , pp. 035001
    • Kang, K.H.1    Hockaday, L.A.2    Butcher, J.T.3
  • 55
    • 84884211629 scopus 로고    scopus 로고
    • 3D bioprinting of heterogeneous aortic valve conduits with alginate/gelatin hydrogels
    • Duan B, Hockaday LA, Kang KH, Butcher JT. 3D bioprinting of heterogeneous aortic valve conduits with alginate/gelatin hydrogels. J Biomed Mater Res A 2013; 101: 1255-1264
    • (2013) J Biomed Mater Res A , vol.101 , pp. 1255-1264
    • Duan, B.1    Hockaday, L.A.2    Kang, K.H.3    Butcher, J.T.4
  • 56
    • 84891684495 scopus 로고    scopus 로고
    • Stiffness and adhesivity control aortic valve interstitial cell behavior within hyaluronic acid based hydrogels
    • Duan B, Hockaday LA, Kapetanovic E, et al. Stiffness and adhesivity control aortic valve interstitial cell behavior within hyaluronic acid based hydrogels. Acta Biomater 2013; 9: 7640-7650
    • (2013) Acta Biomater , vol.9 , pp. 7640-7650
    • Duan, B.1    Hockaday, L.A.2    Kapetanovic, E.3
  • 57
    • 77953025978 scopus 로고    scopus 로고
    • Cell-laden microengineered gelatin methacrylate hydrogels
    • Nichol JW, Koshy ST, Bae H, et al. Cell-laden microengineered gelatin methacrylate hydrogels. Biomaterials 2010; 31: 5536-5544
    • (2010) Biomaterials , vol.31 , pp. 5536-5544
    • Nichol, J.W.1    Koshy, S.T.2    Bae, H.3
  • 58
    • 17044383841 scopus 로고    scopus 로고
    • Synthesis and characterization of novel biodegradable unsaturated poly(ester amide)s
    • Guo K, Chu CC, Chkhaidze E, Katsarava R. Synthesis and characterization of novel biodegradable unsaturated poly(ester amide)s. J Polym Sci Part A Polym Chem 2005; 43: 1463-1477
    • (2005) J Polym Sci Part A Polym Chem , vol.43 , pp. 1463-1477
    • Guo, K.1    Chu, C.C.2    Chkhaidze, E.3    Katsarava, R.4
  • 59
    • 0032125816 scopus 로고    scopus 로고
    • Characterization of permeability and network structure of interfacially photopolymerized poly(ethylene glycol) diacrylate hydrogels
    • Cruise GM, Scharp DS, Hubbell JA. Characterization of permeability and network structure of interfacially photopolymerized poly(ethylene glycol) diacrylate hydrogels. Biomaterials 1998; 19: 1287-1294
    • (1998) Biomaterials , vol.19 , pp. 1287-1294
    • Cruise, G.M.1    Scharp, D.S.2    Hubbell, J.A.3
  • 60
    • 79956068370 scopus 로고    scopus 로고
    • Stiffness of photocrosslinked RGD -Alginate gels regulates adipose progenitor cell behavior
    • Chandler EM, Berglund CM, Lee JS, et al. Stiffness of photocrosslinked RGD -Alginate gels regulates adipose progenitor cell behavior. Biotechnol Bioeng 2011; 108: 1683-1692
    • (2011) Biotechnol Bioeng , vol.108 , pp. 1683-1692
    • Chandler, E.M.1    Berglund, C.M.2    Lee, J.S.3
  • 61
    • 79551573106 scopus 로고    scopus 로고
    • Methods for photocrosslinking alginate hydrogel scaffolds with high cell viability
    • Rouillard AD, Berglund CM, Lee JY, et al. Methods for photocrosslinking alginate hydrogel scaffolds with high cell viability. Tissue Eng Part C Methods 2011; 17: 173-179
    • (2011) Tissue Eng Part C Methods , vol.17 , pp. 173-179
    • Rouillard, A.D.1    Berglund, C.M.2    Lee, J.Y.3
  • 62
    • 78349304182 scopus 로고    scopus 로고
    • Extracellular matrix production by adipose-derived stem cells: Implications for heart valve tissue engineering
    • Colazzo F, Sarathchandra P, Smolenski RT, et al. Extracellular matrix production by adipose-derived stem cells: implications for heart valve tissue engineering. Biomaterials 2011; 32: 119-127
    • (2011) Biomaterials , vol.32 , pp. 119-127
    • Colazzo, F.1    Sarathchandra, P.2    Smolenski, R.T.3
  • 63
    • 33846940535 scopus 로고    scopus 로고
    • Characterization of structural and signaling molecules by human valve interstitial cells and comparison to human mesenchymal stem cells
    • Latif N, Sarathchandra P, Thomas PS, et al. Characterization of structural and signaling molecules by human valve interstitial cells and comparison to human mesenchymal stem cells. J Heart Valve Dis 2007; 16: 56-66
    • (2007) J Heart Valve Dis , vol.16 , pp. 56-66
    • Latif, N.1    Sarathchandra, P.2    Thomas, P.S.3
  • 64
    • 79551485966 scopus 로고    scopus 로고
    • Induction of mesenchymal to endothelial transformation of adipose -derived stem cells
    • Colazzo F, Chester AH, Taylor PM, Yacoub MH. Induction of mesenchymal to endothelial transformation of adipose -derived stem cells. J Heart Valve Dis 2010; 19: 736-744
    • (2010) J Heart Valve Dis , vol.19 , pp. 736-744
    • Colazzo, F.1    Chester, A.H.2    Taylor, P.M.3    Yacoub, M.H.4
  • 65
    • 77950857006 scopus 로고    scopus 로고
    • Differentiation of adipose-derived stem cells into contractile smooth muscle cells induced by transforming growth factor -beta1 and bone morphogenetic protein-4
    • Wang C, Yin S, Cen L, et al. Differentiation of adipose-derived stem cells into contractile smooth muscle cells induced by transforming growth factor -beta1 and bone morphogenetic protein-4. Tissue Eng Part A 2010; 16: 1201-1213
    • (2010) Tissue Eng Part A , vol.16 , pp. 1201-1213
    • Wang, C.1    Yin, S.2    Cen, L.3
  • 66
    • 0032251471 scopus 로고    scopus 로고
    • Adipose tissue in human infancy and childhood: An evolutionary perspective
    • Kuzawa CW. Adipose tissue in human infancy and childhood: an evolutionary perspective. Yearb Phys Anthropol 1998; 41: 177-209
    • (1998) Yearb Phys Anthropol , vol.41 , pp. 177-209
    • Kuzawa, C.W.1
  • 67
    • 84876562106 scopus 로고    scopus 로고
    • Side-specific endothelial-dependent regulation of aortic valve calcification interplay of hemodynamics and nitric oxide signaling
    • Richards J, El-Hamamsy I, Chen S, et al. Side-specific endothelial-dependent regulation of aortic valve calcification interplay of hemodynamics and nitric oxide signaling. Am J Pathol 2013; 182: 1922-1931
    • (2013) Am J Pathol , vol.182 , pp. 1922-1931
    • Richards, J.1    El-Hamamsy, I.2    Chen, S.3
  • 68
    • 79953200175 scopus 로고    scopus 로고
    • Design and testing of a pulsatile conditioning system for dynamic endothelialization of polyphenol -stabilized tissue engineered heart valves
    • Sierad LN, Simionescu A, Albers C, et al. Design and testing of a pulsatile conditioning system for dynamic endothelialization of polyphenol -stabilized tissue engineered heart valves. Cardiovasc Eng Technol 2010; 1: 138-153
    • (2010) Cardiovasc Eng Technol , vol.1 , pp. 138-153
    • Sierad, L.N.1    Simionescu, A.2    Albers, C.3
  • 69
    • 0034002891 scopus 로고    scopus 로고
    • New pulsatile bioreactor for in vitro formation of tissue engineered heart valves
    • Hoerstrup SP, Sodian R, Sperling JS, et al. New pulsatile bioreactor for in vitro formation of tissue engineered heart valves. Tissue Eng 2000; 6: 75-79
    • (2000) Tissue Eng , vol.6 , pp. 75-79
    • Hoerstrup, S.P.1    Sodian, R.2    Sperling, J.S.3
  • 70
    • 77958101381 scopus 로고    scopus 로고
    • Three-dimensional nanocomposite scaffolds fabricated via selective laser sintering for bone tissue engineering
    • Duan B, Wang M, Zhou WY, et al. Three-dimensional nanocomposite scaffolds fabricated via selective laser sintering for bone tissue engineering. Acta Biomater 2010; 6: 4495-4505
    • (2010) Acta Biomater , vol.6 , pp. 4495-4505
    • Duan, B.1    Wang, M.2    Zhou, W.Y.3
  • 71
    • 77954990589 scopus 로고    scopus 로고
    • An optical method for evaluation of geometric fidelity for anatomically shaped tissue-engineered constructs
    • Ballyns JJ, Cohen DL, Malone E, et al. An optical method for evaluation of geometric fidelity for anatomically shaped tissue-engineered constructs. Tissue Eng Part C Method 2010; 16: 693-703
    • (2010) Tissue Eng Part C Method , vol.16 , pp. 693-703
    • Ballyns, J.J.1    Cohen, D.L.2    Malone, E.3
  • 72
    • 84926022660 scopus 로고    scopus 로고
    • Rapid manufacturing techniques for the tissue engineering of human heart valves
    • Epub ahead of print ezt510
    • Lueders C, Jastram B, Hetzer R, Schwandt H. Rapid manufacturing techniques for the tissue engineering of human heart valves. Eur J Cardiothorac Surg 2014. pii: ezt510. [Epub ahead of print]
    • (2014) Eur J Cardiothorac Surg
    • Lueders, C.1    Jastram, B.2    Hetzer, R.3    Schwandt, H.4
  • 73
    • 84868158132 scopus 로고    scopus 로고
    • Scaffold-free inkjet printing of three -dimensional zigzag cellular tubes
    • Xu C, Chai W, Huang Y, Markwald RR. Scaffold-free inkjet printing of three -dimensional zigzag cellular tubes. Biotechnol Bioeng 2012; 109: 3152-3160
    • (2012) Biotechnol Bioeng , vol.109 , pp. 3152-3160
    • Xu, C.1    Chai, W.2    Huang, Y.3    Markwald, R.R.4
  • 74
    • 69649100202 scopus 로고    scopus 로고
    • Human microvasculature fabrication using thermal inkjet printing technology
    • Cui X, Boland T. Human microvasculature fabrication using thermal inkjet printing technology. Biomaterials 2009; 30: 6221-6227
    • (2009) Biomaterials , vol.30 , pp. 6221-6227
    • Cui, X.1    Boland, T.2
  • 75
    • 84866355664 scopus 로고    scopus 로고
    • Rapid casting of patterned vascular networks for perfusable engineered three-dimensional tissues
    • Miller JS, Stevens KR, Yang MT, et al. Rapid casting of patterned vascular networks for perfusable engineered three-dimensional tissues. Nat Mater 2012; 11: 768-774
    • (2012) Nat Mater , vol.11 , pp. 768-774
    • Miller, J.S.1    Stevens, K.R.2    Yang, M.T.3
  • 76
    • 84874591959 scopus 로고    scopus 로고
    • Tissue engineered skin substitutes created by laser-Assisted bioprinting form skin-like structures in the dorsal skin fold chamber in mice
    • Michael S, Sorg H, Peck CT, et al. Tissue engineered skin substitutes created by laser-Assisted bioprinting form skin-like structures in the dorsal skin fold chamber in mice Plos One 2013; 8: e57741
    • (2013) Plos One , vol.8 , pp. e57741
    • Michael, S.1    Sorg, H.2    Peck, C.T.3
  • 77
    • 58249093214 scopus 로고    scopus 로고
    • Multi-layered culture of human skin fibroblasts and keratinocytes through three-dimensional freeform fabrication
    • Lee W, Debasitis JC, Lee VK, et al. Multi-layered culture of human skin fibroblasts and keratinocytes through three-dimensional freeform fabrication. Biomaterials 2009; 30: 1587-1595
    • (2009) Biomaterials , vol.30 , pp. 1587-1595
    • Lee, W.1    Debasitis, J.C.2    Lee, V.K.3
  • 78
    • 77951604536 scopus 로고    scopus 로고
    • On -demand three-dimensional freeform fabrication of multi-layered hydrogel scaffold with fluidic channels
    • Lee W, Lee V, Polio S, et al. On -demand three-dimensional freeform fabrication of multi-layered hydrogel scaffold with fluidic channels. Biotechnol Bioeng 2010; 105: 1178-1186
    • (2010) Biotechnol Bioeng , vol.105 , pp. 1178-1186
    • Lee, W.1    Lee, V.2    Polio, S.3
  • 79
    • 35649019249 scopus 로고    scopus 로고
    • Rapid prototyping as a tool for manufacturing bioartificial livers
    • Wang XH, Yan YN, Zhang RJ. Rapid prototyping as a tool for manufacturing bioartificial livers. Trends Biotechnol 2007; 25: 505-513
    • (2007) Trends Biotechnol , vol.25 , pp. 505-513
    • Wang, X.H.1    Yan, Y.N.2    Zhang, R.J.3
  • 80
    • 84868578023 scopus 로고    scopus 로고
    • Intelligent freeform manufacturing of complex organs
    • Wang X. Intelligent freeform manufacturing of complex organs. Artif Organs 2012; 36: 951-961
    • (2012) Artif Organs , vol.36 , pp. 951-961
    • Wang, X.1
  • 81
    • 33845530962 scopus 로고    scopus 로고
    • Three-dimensional gelatin and gelatin/hyaluronan hydrogel structures for traumatic brain injury
    • Zhang T, Yan YN, Wang XH, et al. Three-dimensional gelatin and gelatin/hyaluronan hydrogel structures for traumatic brain injury. J Bioactive Compatible Polym 2007; 22: 19-29
    • (2007) J Bioactive Compatible Polym , vol.22 , pp. 19-29
    • Zhang, T.1    Yan, Y.N.2    Wang, X.H.3
  • 82
    • 33645883539 scopus 로고    scopus 로고
    • Viability and electrophysiology of neural cell structures generated by the inkjet printing method
    • Xu T, Gregory CA, Molnar P, et al. Viability and electrophysiology of neural cell structures generated by the inkjet printing method. Biomaterials 2006; 27: 3580-3588
    • (2006) Biomaterials , vol.27 , pp. 3580-3588
    • Xu, T.1    Gregory, C.A.2    Molnar, P.3
  • 83
    • 67649669884 scopus 로고    scopus 로고
    • Three -dimensional bioprinting of rat embryonic neural cells
    • Lee W, Pinckney J, Lee V, et al. Three -dimensional bioprinting of rat embryonic neural cells. Neuroreport 2009; 20: 798-803
    • (2009) Neuroreport , vol.20 , pp. 798-803
    • Lee, W.1    Pinckney, J.2    Lee, V.3
  • 84
    • 24944439378 scopus 로고    scopus 로고
    • Skin cell culture on an ear-shaped scaffold created by fused deposition modelling
    • Cai H, Azangwe G, Shepherd DET. Skin cell culture on an ear-shaped scaffold created by fused deposition modelling. Biomed Mater Eng 2005; 15: 375-380
    • (2005) Biomed Mater Eng , vol.15 , pp. 375-380
    • Cai, H.1    Azangwe, G.2    Det, S.3
  • 85
    • 84905572827 scopus 로고    scopus 로고
    • Should a native depth-dependent distribution of human meniscus constitutive components be considered in FEA-models of the knee joint?
    • Parraga Quiroga JM, Emans P, Wilson W, et al. Should a native depth-dependent distribution of human meniscus constitutive components be considered in FEA-models of the knee joint?. J Mech Behav Biomed Mater 2014; 38: 242-250
    • (2014) J Mech Behav Biomed Mater , vol.38 , pp. 242-250
    • Parraga Quiroga, J.M.1    Emans, P.2    Wilson, W.3
  • 86
    • 0031754657 scopus 로고    scopus 로고
    • The menisci of the knee joint. Anatomical and functional characteristics, and a rationale for clinical treatment
    • Messner K, Gao J. The menisci of the knee joint. Anatomical and functional characteristics, and a rationale for clinical treatment. J Anat 1998; 193: 161-178
    • (1998) J Anat , vol.193 , pp. 161-178
    • Messner, K.1    Gao, J.2
  • 87
    • 0344668543 scopus 로고    scopus 로고
    • Human intervertebral disc cell morphology and cytoskeletal composition: A preliminary study of regional variations in health and disease
    • Johnson WE, Roberts S. Human intervertebral disc cell morphology and cytoskeletal composition: a preliminary study of regional variations in health and disease. J Anat 2003; 203: 605-612
    • (2003) J Anat , vol.203 , pp. 605-612
    • Johnson, W.E.1    Roberts, S.2
  • 88
    • 80052002532 scopus 로고    scopus 로고
    • Image-based tissue engineering of a total intervertebral disc implant for restoration of function to the rat lumbar spine
    • Bowles RD, Gebhard HH, Dyke JP, et al. Image-based tissue engineering of a total intervertebral disc implant for restoration of function to the rat lumbar spine. NMR Biomed 2012; 25: 443-451
    • (2012) NMR Biomed , vol.25 , pp. 443-451
    • Bowles, R.D.1    Gebhard, H.H.2    Dyke, J.P.3
  • 89
    • 79957767371 scopus 로고    scopus 로고
    • Skin tissue engineering-in vivo and in vitro applications
    • Groeber F, Holeiter M, Hampel M, et al. Skin tissue engineering-in vivo and in vitro applications. Adv Drug Deliv Rev 2011; 63: 352-366
    • (2011) Adv Drug Deliv Rev , vol.63 , pp. 352-366
    • Groeber, F.1    Holeiter, M.2    Hampel, M.3
  • 91
    • 84874745726 scopus 로고    scopus 로고
    • Tissue engineering of the tympanic membrane
    • Teh BM, Marano RJ, Shen Y, et al. Tissue engineering of the tympanic membrane. Tissue Eng Part B Rev 2013; 19: 116-132
    • (2013) Tissue Eng Part B Rev , vol.19 , pp. 116-132
    • Teh, B.M.1    Marano, R.J.2    Shen, Y.3
  • 92
    • 84873378820 scopus 로고    scopus 로고
    • Adenovector-mediated gene delivery to human umbilical cord mesenchymal stromal cells induces inner ear cell phenotype
    • Devarajan K, Forrest ML, Detamore MS, Staecker H. Adenovector-mediated gene delivery to human umbilical cord mesenchymal stromal cells induces inner ear cell phenotype. Cell Reprogram 2013; 15: 43-54
    • (2013) Cell Reprogram , vol.15 , pp. 43-54
    • Devarajan, K.1    Forrest, M.L.2    Detamore, M.S.3    Staecker, H.4
  • 93
    • 84873733061 scopus 로고    scopus 로고
    • Improvement of eustachian tube function by tissue-engineered regeneration of mastoid air cells
    • Kanemaru S, Umeda H, Yamashita M, et al. Improvement of eustachian tube function by tissue-engineered regeneration of mastoid air cells. Laryngoscope 2013; 123: 472-476
    • (2013) Laryngoscope , vol.123 , pp. 472-476
    • Kanemaru, S.1    Umeda, H.2    Yamashita, M.3
  • 94
    • 84866628159 scopus 로고    scopus 로고
    • Histologic characterization of human ear ossicles for the development of tissue-engineered replacements
    • D Alessandro D, Danti S, De Vito A, et al. Histologic characterization of human ear ossicles for the development of tissue-engineered replacements. Otol Neurotol 2012; 33: 1458-1468
    • (2012) Otol Neurotol , vol.33 , pp. 1458-1468
    • D'Alessandro, D.1    Danti, S.2    De Vito, A.3
  • 95
    • 84893604568 scopus 로고    scopus 로고
    • Quantitative evaluation of mechanical properties in tissueengineered auricular cartilage
    • Nimeskern L, Van Osch GJ, Muller R, Stok K. Quantitative evaluation of mechanical properties in tissueengineered auricular cartilage. Tissue Eng Part B Rev 2013; 20: 17-27
    • (2013) Tissue Eng Part B Rev , vol.20 , pp. 17-27
    • Nimeskern, L.1    Van Osch, G.J.2    Muller, R.3    Stok, K.4
  • 96
    • 84876736841 scopus 로고    scopus 로고
    • Mechanical evaluation of bacterial nanocellulose as an implant material for ear cartilage replacement
    • Nimeskern L, Martinez Avila H, Sundberg J, et al. Mechanical evaluation of bacterial nanocellulose as an implant material for ear cartilage replacement. J Mech Behav Biomed Mater 2013; 22: 12-21
    • (2013) J Mech Behav Biomed Mater , vol.22 , pp. 12-21
    • Nimeskern, L.1    Martinez Avila, H.2    Sundberg, J.3
  • 97
    • 84873093712 scopus 로고    scopus 로고
    • Engineering ear-shaped cartilage using electrospun fibrous membranes of gelatin/polycaprolactone
    • Xue JX, Feng B, Zheng R, et al. Engineering ear-shaped cartilage using electrospun fibrous membranes of gelatin/polycaprolactone. Biomaterials 2013; 34: 2624-2631
    • (2013) Biomaterials , vol.34 , pp. 2624-2631
    • Xue, J.X.1    Feng, B.2    Zheng, R.3
  • 98
    • 84873599946 scopus 로고    scopus 로고
    • Human auricular tissue engineering in an immunocompetent animal model
    • Sterodimas A, De Faria J. Human auricular tissue engineering in an immunocompetent animal model. Aesthet Surg J 2013; 33: 283-289
    • (2013) Aesthet Surg J , vol.33 , pp. 283-289
    • Sterodimas, A.1    De Faria, J.2
  • 99
    • 77956090298 scopus 로고    scopus 로고
    • Photocrosslinkable hyaluronan-gelatin hydrogels for two-step bioprinting
    • Skardal A, Zhang J, McCoard L, et al. Photocrosslinkable hyaluronan-gelatin hydrogels for two-step bioprinting. Tissue Eng Part A 2010; 16: 2675-2685
    • (2010) Tissue Eng Part A , vol.16 , pp. 2675-2685
    • Skardal, A.1    Zhang, J.2    McCoard, L.3
  • 100
    • 84899561581 scopus 로고    scopus 로고
    • Manufacture of beta-TCP/alginate scaffolds through a Fab@home model for application in bone tissue engineering
    • Diogo GS, Gaspar VM, Serra IR, et al. Manufacture of beta-TCP/alginate scaffolds through a Fab@home model for application in bone tissue engineering. Biofabrication 2014; 6: 025001
    • (2014) Biofabrication , vol.6 , pp. 025001
    • Diogo, G.S.1    Gaspar, V.M.2    Serra, I.R.3
  • 101
    • 84896549846 scopus 로고    scopus 로고
    • Tunable hydrogel composite with two-step processing in combination with innovative hardware upgrade for cell-based three-dimensional bioprinting
    • Wust S, Godla ME, Muller R, Hofmann S. Tunable hydrogel composite with two-step processing in combination with innovative hardware upgrade for cell-based three-dimensional bioprinting. Acta Biomater 2014; 10: 630-640
    • (2014) Acta Biomater , vol.10 , pp. 630-640
    • Wust, S.1    Godla, M.E.2    Muller, R.3    Hofmann, S.4


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