Fast Stereolithography Printing of Large-Scale Biocompatible Hydrogel Models

被引:81
作者
Anandakrishnan, Nanditha [1 ]
Ye, Hang [2 ]
Guo, Zipeng [2 ]
Chen, Zhaowei [1 ]
Mentkowski, Kyle, I [1 ,3 ]
Lang, Jennifer K. [1 ,3 ,4 ]
Rajabian, Nika [5 ]
Andreadis, Stelios T. [1 ,5 ]
Ma, Zhen [6 ]
Spernyak, Joseph A. [7 ]
Lovell, Jonathan F. [1 ]
Wang, Depeng [1 ]
Xia, Jun [1 ]
Zhou, Chi [2 ]
Zhao, Ruogang [1 ]
机构
[1] Univ Buffalo State Univ New York, Dept Biomed Engn, Buffalo, NY 14260 USA
[2] Univ Buffalo State Univ New York, Dept Ind & Syst Engn, Buffalo, NY 14260 USA
[3] Univ Buffalo, Jacobs Sch Med & Biomed Sci, Dept Med, Div Cardiol, Buffalo, NY 14203 USA
[4] VA WNY Healthcare Syst, Buffalo, NY 14215 USA
[5] Univ Buffalo State Univ New York, Dept Chem & Biol Engn, Buffalo, NY 14260 USA
[6] Syracuse Univ, Syracuse Biomat Inst, Dept Biomed & Chem Engn, Syracuse, NY 13244 USA
[7] Roswell Park Comprehens Canc Ctr, Dept Cell Stress Biol, Buffalo, NY 14263 USA
基金
美国国家卫生研究院;
关键词
3D bioprinting; continuous printing; endothelialization; hydrogels; stereolithography; 3D; FABRICATION; NETWORKS; FUTURE;
D O I
10.1002/adhm.202002103
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Large size cell-laden hydrogel models hold great promise for tissue repair and organ transplantation, but their fabrication using 3D bioprinting is limited by the slow printing speed that can affect the part quality and the biological activity of the encapsulated cells. Here a fast hydrogel stereolithography printing (FLOAT) method is presented that allows the creation of a centimeter-sized, multiscale solid hydrogel model within minutes. Through precisely controlling the photopolymerization condition, low suction force-driven, high-velocity flow of the hydrogel prepolymer is established that supports the continuous replenishment of the prepolymer solution below the curing part and the nonstop part growth. The rapid printing of centimeter-sized hydrogel models using FLOAT is shown to significantly reduce the part deformation and cellular injury caused by the prolonged exposure to the environmental stresses in conventional 3D printing methods. Embedded vessel networks fabricated through multiscale printing allows media perfusion needed to maintain the high cellular viability and metabolic functions in the deep core of the large-sized models. The endothelialization of this vessel network allows the establishment of barrier functions. Together, these studies demonstrate a rapid 3D hydrogel printing method and represent a first step toward the fabrication of large-sized engineered tissue models.
引用
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页数:12
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共 44 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]   Poly(ethylene glycol) hydrogels formed by thiol-ene photopolymerization for enzyme-responsive protein delivery [J].
Aimetti, Alex A. ;
Machen, Alexandra J. ;
Anseth, Kristi S. .
BIOMATERIALS, 2009, 30 (30) :6048-6054
[3]   Engineering Complex Tissues [J].
Atala, Anthony ;
Kasper, F. Kurtis ;
Mikos, Antonios G. .
SCIENCE TRANSLATIONAL MEDICINE, 2012, 4 (160)
[4]   Hydrogel bioprinted microchannel networks for vascularization of tissue engineering constructs [J].
Bertassoni, Luiz E. ;
Cecconi, Martina ;
Manoharan, Vijayan ;
Nikkhah, Mehdi ;
Hjortnaes, Jesper ;
Cristino, Ana Luiza ;
Barabaschi, Giada ;
Demarchi, Danilo ;
Dokmeci, Mehmet R. ;
Yang, Yunzhi ;
Khademhosseini, Ali .
LAB ON A CHIP, 2014, 14 (13) :2202-2211
[5]   Controlling Shear Stress in 3D Bioprinting is a Key Factor to Balance Printing Resolution and Stem Cell Integrity [J].
Blaeser, Andreas ;
Campos, Daniela Filipa Duarte ;
Puster, Uta ;
Richtering, Walter ;
Stevens, Molly M. ;
Fischer, Horst .
ADVANCED HEALTHCARE MATERIALS, 2016, 5 (03) :326-333
[6]   Functional Human Vascular Network Generated in Photocrosslinkable Gelatin Methacrylate Hydrogels [J].
Chen, Ying-Chieh ;
Lin, Ruei-Zeng ;
Qi, Hao ;
Yang, Yunzhi ;
Bae, Hojae ;
Melero-Martin, Juan M. ;
Khademhosseini, Ali .
ADVANCED FUNCTIONAL MATERIALS, 2012, 22 (10) :2027-2039
[7]   3D Bioprinting for Organ Regeneration [J].
Cui, Haitao ;
Nowicki, Margaret ;
Fisher, John P. ;
Zhang, Lijie Grace .
ADVANCED HEALTHCARE MATERIALS, 2017, 6 (01)
[8]   Three-dimensionally printed biological machines powered by skeletal muscle [J].
Cvetkovic, Caroline ;
Raman, Ritu ;
Chan, Vincent ;
Williams, Brian J. ;
Tolish, Madeline ;
Bajaj, Piyush ;
Sakar, Mahmut Selman ;
Asada, H. Harry ;
Saif, M. Taher A. ;
Bashir, Rashid .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (28) :10125-10130
[9]   Bioprinting of Stem Cells: Interplay of Bioprinting Process, Bioinks, and Stem Cell Properties [J].
Ding, Supeng ;
Feng, Lu ;
Wu, Jiayang ;
Zhu, Fei ;
Tan, Ze'en ;
Yao, Rui .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2018, 4 (09) :3108-3124
[10]   Tissue cells feel and respond to the stiffness of their substrate [J].
Discher, DE ;
Janmey, P ;
Wang, YL .
SCIENCE, 2005, 310 (5751) :1139-1143