Bioink properties before, during and after 3D bioprinting

被引:760
作者
Hoelzl, Katja [1 ,2 ]
Lin, Shengmao [3 ,6 ]
Tytgat, Liesbeth [4 ,5 ]
Van Vlierberghe, Sandra [4 ,5 ]
Gu, Linxia [3 ]
Ovsianikov, Aleksandr [1 ,2 ]
机构
[1] Vienna Univ Technol, Inst Mat Sci & Technol, Vienna, Austria
[2] Austrian Cluster Tissue Regenerat, Vienna, Austria
[3] Univ Nebraska Lincoln, Dept Mech & Mat Engn, Lincoln, NE USA
[4] Univ Ghent, Polymer Chem & Biomat Grp, B-9000 Ghent, Belgium
[5] Vrije Univ Brussel, Brussels Photon Team, Ixelles, Belgium
[6] Xiamen Univ Technol, Sch Civil Engn & Architecture, Xiamen, Peoples R China
基金
美国国家科学基金会; 欧洲研究理事会;
关键词
tissue engineering; bioprinting; hydrogels; scaffold; numerical modeling; bioink; 3D printing; SHEAR-THINNING HYDROGELS; CELL-LADEN HYDROGELS; MECHANICAL-PROPERTIES; STEM-CELLS; HYALURONIC-ACID; TISSUE CONSTRUCTS; FABRICATION; SCAFFOLDS; BONE; DENSITY;
D O I
10.1088/1758-5090/8/3/032002
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Bioprinting is a process based on additive manufacturing from materials containing living cells. These materials, often referred to as bioink, are based on cytocompatible hydrogel precursor formulations, which gel in a manner compatible with different bioprinting approaches. The bioink properties before, during and after gelation are essential for its printability, comprising such features as achievable structural resolution, shape fidelity and cell survival. However, it is the final properties of the matured bioprinted tissue construct that are crucial for the end application. During tissue formation these properties are influenced by the amount of cells present in the construct, their proliferation, migration and interaction with the material. A calibrated computational framework is able to predict the tissue development and maturation and to optimize the bioprinting input parameters such as the starting material, the initial cell loading and the construct geometry. In this contribution relevant bioink properties are reviewed and discussed on the example of most popular bioprinting approaches. The effect of cells on hydrogel processing and vice versa is highlighted. Furthermore, numerical approaches were reviewed and implemented for depicting the cellular mechanics within the hydrogel as well as for prediction of mechanical properties to achieve the desired hydrogel construct considering cell density, distribution and material-cell interaction.
引用
收藏
页数:19
相关论文
共 128 条
[1]  
Aguado BA, 2012, TISSUE ENG PT A, V18, P806, DOI [10.1089/ten.tea.2011.0391, 10.1089/ten.TEA.2011.0391]
[2]   Numerical simulations of bioextruded polymer scaffolds for tissue engineering applications [J].
Almeida, Henrique A. ;
Bartolo, Paulo J. .
POLYMER INTERNATIONAL, 2013, 62 (11) :1544-1552
[3]  
[Anonymous], 2014, BIOMATERIALS BONE RE
[4]   Three-dimensional inkjet biofabrication based on designed images [J].
Arai, Kenichi ;
Iwanaga, Shintaroh ;
Toda, Hideki ;
Genci, Capi ;
Nishiyama, Yuichi ;
Nakamura, Makoto .
BIOFABRICATION, 2011, 3 (03)
[5]  
Atala AnthonyJames J. Yoo., 2015, ESSENTIALS 3D BIOFAB
[6]   Cell-laden microengineered pullulan methacrylate hydrogels promote cell proliferation and 3D cluster formation [J].
Bae, Hojae ;
Ahari, Amir F. ;
Shin, Hyeongho ;
Nichol, Jason W. ;
Hutson, Che B. ;
Masaeli, Mahdokht ;
Kim, Su-Hwan ;
Aubin, Hug ;
Yamanlar, Seda ;
Khademhosseini, Ali .
SOFT MATTER, 2011, 7 (05) :1903-1911
[7]   Biological laser printing: A novel technique for creating heterogeneous 3-dimensional cell patterns [J].
Barron, JA ;
Wu, P ;
Ladouceur, HD ;
Ringeisen, BR .
BIOMEDICAL MICRODEVICES, 2004, 6 (02) :139-147
[8]   Influence of the degree of methacrylation on hyaluronic acid hydrogels properties [J].
Bencherif, Sidi A. ;
Srinivasan, Abiraman ;
Horkay, Ferenc ;
Hollinger, Jeffrey O. ;
Matyjaszewski, Krzysztof ;
Washburn, Newell R. .
BIOMATERIALS, 2008, 29 (12) :1739-1749
[9]   The 3D printing of gelatin methacrylamide cell-laden tissue-engineered constructs with high cell viability [J].
Billiet, Thomas ;
Gevaert, Elien ;
De Schryver, Thomas ;
Cornelissen, Maria ;
Dubruel, Peter .
BIOMATERIALS, 2014, 35 (01) :49-62
[10]   Designing 3D photopolymer hydrogels to regulate biomechanical cues and tissue growth for cartilage tissue engineering [J].
Bryant, Stephanie J. ;
Nicodemus, Garret D. ;
Villanueva, Idalis .
PHARMACEUTICAL RESEARCH, 2008, 25 (10) :2379-2386