High-throughput fabrication of vascularized spheroids for bioprinting

被引:94
作者
De Moor, Lise [1 ]
Merovci, Idriz [1 ,2 ]
Baetens, Sarah [1 ]
Verstraeten, Julien [1 ]
Kowalska, Paulina [1 ]
Krysko, Dmitri V. [3 ,4 ,5 ]
De Vos, Winnok H. [6 ]
Declercq, Heidi [1 ]
机构
[1] Univ Ghent, Dept Basic Med Sci, Tissue Engn & Biomat Grp, Fac Med & Hlth Sci, Ghent, Belgium
[2] Univ Prishtina Hasan Prishtina, Prishtina, Kosovo
[3] Univ Ghent, Anat & Embryol Grp, Dept Basic Med Sci, Ghent, Belgium
[4] Univ Ghent, Canc Res Inst Ghent, Fac Med & Hlth Sci, Ghent, Belgium
[5] Natl Res Lobachevsky State Univ Nizhni Novgorod, Nizhnii Novgorod, Russia
[6] Univ Antwerp, Dept Vet Sci, Lab Cell Biol & Histol, Antwerp, Belgium
关键词
spheroids; vascularization; coculture; scaffold-free; 3D culture; bioprinting; MESENCHYMAL STEM-CELLS; PREVASCULARIZED MICROTISSUE SPHEROIDS; BLOOD-VESSEL FORMATION; ENDOTHELIAL-CELLS; DIFFERENTIAL ADHESION; NETWORK FORMATION; BONE-MARROW; IN-VITRO; FIBROBLASTS; COCULTURE;
D O I
10.1088/1758-5090/aac7e6
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Overcoming the problem of vascularization remains the main challenge in the field of tissue engineering. As three-dimensional (3D) bioprinting is the rising technique for the fabrication of large tissue constructs, small prevascularized building blocks were generated that can be incorporated throughout a printed construct, answering the need for a microvasculature within the small micron range (<10 mu m). Uniform spheroids with an ideal geometry and diameter for bioprinting were formed, using a high-throughput non-adhesive agarose microwell system. Since monoculture spheroids of endothelial cells were unable to remain stable, coculture spheroids combining endothelial cells with fibroblasts and/or adipose tissue derived mesenchymal stem cells (ADSC) as supporting cells, were created. When applying the favorable coculture ratio, viable spheroids were obtained and endothelial cells spontaneously formed a capillary-like network and lumina, as shown by immunohistochemistry and transmission electron microscopy. Especially the presence of ADSC led to a higher vascularization and extracellular matrix production of the microtissue. Moreover, spheroids were able to assemble at random in suspension and in a hydrogel, creating a macrotissue. During at random assembly, cells reorganized, creating a branched capillary-network throughout the entire fused construct by inoculating with capillaries of adjacent spheroids. Combining the advantage of this natural capacity of microtissues to self-assemble and the controlled organization by bioprinting technologies, these prevascularized spheroids can be useful as building blocks for the engineering of large vascularized 3D tissues.
引用
收藏
页数:14
相关论文
共 61 条
[1]   Advances in the formation, use and understanding of multi-cellular spheroids [J].
Achilli, Toni-Marie ;
Meyer, Julia ;
Morgan, Jeffrey R. .
EXPERT OPINION ON BIOLOGICAL THERAPY, 2012, 12 (10) :1347-1360
[2]   Microscopic images of intraspheroidal pH by 1H magnetic resonance chemical shift imaging of pH sensitive indicators [J].
Alvarez-Pérez, J ;
Ballesteros, P ;
Cerdán, S .
MAGNETIC RESONANCE MATERIALS IN PHYSICS BIOLOGY AND MEDICINE, 2005, 18 (06) :293-301
[3]   Vascular Network Formation by Human Microvascular Endothelial Cells in Modular Fibrin Microtissues [J].
Annarnalai, Ramkumar Tiruvannamalai ;
Rioja, Ana Y. ;
Putnam, Andrew J. ;
Stegemann, Jan P. .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2016, 2 (11) :1914-1925
[4]   The Pivotal Role of Vascularization in Tissue Engineering [J].
Auger, Francois A. ;
Gibot, Laure ;
Lacroix, Dan .
ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, VOL 15, 2013, 15 :177-200
[5]   Redifferentiation of High-Throughput Generated Fibrochondrocyte Micro-Aggregates: Impact of Low Oxygen Tension [J].
Berneel, Elke ;
Philips, Charlot ;
Declercq, Heidi ;
Cornelissen, Ria .
CELLS TISSUES ORGANS, 2015, 202 (5-6) :369-381
[6]   Extracellular matrix deposition by fibroblasts is necessary to promote capillary-like tube formation in vitro [J].
Berthod, F ;
Germain, L ;
Tremblay, N ;
Auger, FA .
JOURNAL OF CELLULAR PHYSIOLOGY, 2006, 207 (02) :491-498
[7]   Phenotypic and proliferative modulation of human mesenchymal stem cells via crosstalk with endothelial cells [J].
Bidarra, Silvia J. ;
Barrias, Cristina C. ;
Barbosa, Mario A. ;
Soares, Raquel ;
Amedee, Joelle ;
Granja, Pedro L. .
STEM CELL RESEARCH, 2011, 7 (03) :186-197
[8]   Bioprinting of a functional vascularized mouse thyroid gland construct [J].
Bulanova, Elena A. ;
Koudan, Elizaveta V. ;
Degosserie, Jonathan ;
Heymans, Charlotte ;
Pereira, Frederico D. A. S. ;
Parfenov, Vladislav A. ;
Sun, Yi ;
Wang, Qi ;
Akhmedova, Suraya A. ;
Sviridova, Irina K. ;
Sergeeva, Natalia S. ;
Frank, Georgy A. ;
Khesuani, Yusef D. ;
Pierreux, Christophe E. ;
Mironov, Vladimir A. .
BIOFABRICATION, 2017, 9 (03)
[9]   A Novel Histochemical Method for a Simultaneous Staining of Melanin and Collagen Fibers [J].
Carriel, Victor S. ;
Aneiros-Fernandez, Jose ;
Arias-Santiago, Salvador ;
Garzon, Ingrid J. ;
Alaminos, Miguel ;
Campos, Antonio .
JOURNAL OF HISTOCHEMISTRY & CYTOCHEMISTRY, 2011, 59 (03) :270-277
[10]   Bone grafts engineered from human adipose-derived stem cells in dynamic 3D-environments [J].
Declercq, Heidi A. ;
De Caluwe, Tamara ;
Krysko, Olga ;
Bachert, Claus ;
Cornelissen, Maria J. .
BIOMATERIALS, 2013, 34 (04) :1004-1017