Biofabrication of tissue constructs by 3D bioprinting of cell-laden microcarriers

被引:308
作者
Levato, Riccardo [1 ,2 ]
Visser, Jetze [3 ]
Planell, Josep A. [1 ]
Engel, Elisabeth [1 ,2 ,4 ]
Malda, Jos [3 ,5 ]
Mateos-Timoneda, Miguel A. [1 ,2 ]
机构
[1] Inst Bioengn Catalonia IBEC, Biomat Regenerat Therapies Grp, Barcelona, Spain
[2] CIBER Bioingn Biomat & Nanomed CIBER BBN, Zaragoza, Spain
[3] Univ Med Ctr Utrecht, Dept Orthopead, Utrecht, Netherlands
[4] Tech Univ Catalonia, Dept Mat Sci & Met, Barcelona, Spain
[5] Univ Utrecht, Fac Vet Med, Dept Equine Sci, Utrecht, Netherlands
关键词
microcarriers; hydrogel; composite materials; bioprinting; osteochondral; cell expansion; MESENCHYMAL STEM-CELLS; CHONDROGENIC DIFFERENTIATION; CHONDROCYTE DIFFERENTIATION; MECHANICAL-PROPERTIES; HYALURONIC-ACID; CARTILAGE; HYDROGELS; CULTURE; GELATIN; COCULTURE;
D O I
10.1088/1758-5082/6/3/035020
中图分类号
R318 [生物医学工程];
学科分类号
100103 [病原生物学];
摘要
Bioprinting allows the fabrication of living constructs with custom-made architectures by spatially controlled deposition of multiple bioinks. This is important for the generation of tissue, such as osteochondral tissue, which displays a zonal composition in the cartilage domain supported by the underlying subchondral bone. Challenges in fabricating functional grafts of clinically relevant size include the incorporation of cues to guide specific cell differentiation and the generation of sufficient cells, which is hard to obtain with conventional cell culture techniques. A novel strategy to address these demands is to combine bioprinting with microcarrier technology. This technology allows for the extensive expansion of cells, while they form multi-cellular aggregates, and their phenotype can be controlled. In this work, living constructs were fabricated via bioprinting of cell-laden microcarriers. Mesenchymal stromal cell (MSC)-laden polylactic acid microcarriers, obtained via static culture or spinner flask expansion, were encapsulated in gelatin methacrylamide-gellan gum bioinks, and the printability of the composite material was studied. This bioprinting approach allowed for the fabrication of constructs with high cell concentration and viability. Microcarrier encapsulation improved the compressive modulus of the hydrogel constructs, facilitated cell adhesion, and supported osteogenic differentiation and bone matrix deposition by MSCs. Bilayered osteochondral models were fabricated using microcarrier-laden bioink for the bone compartment. These findings underscore the potential of this new microcarrier-based biofabrication approach for bone and osteochondral constructs.
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页数:12
相关论文
共 54 条
[1]
Ayyildiz-Tamis D, 2013, CELL DEV BIOL ANIM, V50, P221
[2]
A review of trends and limitations in hydrogel-rapid prototyping for tissue engineering [J].
Billiet, Thomas ;
Vandenhaute, Mieke ;
Schelfhout, Jorg ;
Van Vlierberghe, Sandra ;
Dubruel, Peter .
BIOMATERIALS, 2012, 33 (26) :6020-6041
[3]
Covalent attachment of a three-dimensionally printed thermoplast to a gelatin hydrogel for mechanically enhanced cartilage constructs [J].
Boere, Kristel W. M. ;
Visser, Jetze ;
Seyednejad, Hajar ;
Rahimian, Sima ;
Gawlitta, Debby ;
van Steenbergen, Mies J. ;
Dhert, Wouter J. A. ;
Hennink, Wim E. ;
Vermonden, Tina ;
Malda, Jos .
ACTA BIOMATERIALIA, 2014, 10 (06) :2602-2611
[4]
Functional and phenotypic characterization of human keratinocytes expanded in microcarrier culture [J].
Borg, Danielle J. ;
Dawson, Rebecca A. ;
Leavesley, David I. ;
Hutmacher, Dietmar W. ;
Upton, Zee ;
Malda, Jos .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2009, 88A (01) :184-194
[5]
The role of pharmacologically active microcarriers releasing TGF-β3 in cartilage formation in vivo by mesenchymal stem cells [J].
Bouffi, Carine ;
Thomas, Olivier ;
Bony, Claire ;
Giteau, Alexandra ;
Venier-Julienne, Marie-Claire ;
Jorgensen, Christian ;
Montero-Menei, Claudia ;
Noel, Daniele .
BIOMATERIALS, 2010, 31 (25) :6485-6493
[6]
Optimization of culture of mesenchymal stem cells: a comparison of conventional plate and microcarrier cultures [J].
Chang, J. ;
Lei, H. ;
Liu, Q. ;
Qin, S. ;
Ma, K. ;
Luo, S. ;
Zhang, X. ;
Huang, W. ;
Zuo, Z. ;
Fu, H. ;
Xia, Y. .
CELL PROLIFERATION, 2012, 45 (05) :430-437
[7]
A modular approach to the engineering of a centimeter-sized bone tissue construct with human amniotic mesenchymal stem cells-laden microcarriers [J].
Chen, Maiqin ;
Wang, Xiu ;
Ye, Zhaoyang ;
Zhang, Yan ;
Zhou, Yan ;
Tan, Wen-Song .
BIOMATERIALS, 2011, 32 (30) :7532-7542
[8]
Biochemical markers of bone metabolism: An overview [J].
Christenson, RH .
CLINICAL BIOCHEMISTRY, 1997, 30 (08) :573-593
[9]
Cui XF, 2012, TISSUE ENG PT A, V18, P1304, DOI [10.1089/ten.tea.2011.0543, 10.1089/ten.TEA.2011.0543]
[10]
Dahlin R L, 2014, TISSUE EN A IN PRESS