Microfluidic-enhanced 3D bioprinting of aligned myoblast-laden hydrogels leads to functionally organized myofibers in vitro and in vivo

被引:242
作者
Costantini, Marco [1 ]
Testa, Stefano [2 ]
Mozetic, Pamela [1 ]
Barbetta, Andrea [3 ]
Fuoco, Claudia [2 ]
Fornetti, Ersilia [2 ]
Tamiro, Francesco [2 ]
Bernardini, Sergio [2 ]
Jaroszewicz, Jakub [4 ]
Swieszkowski, Wojciech
Trombetta, Marcella [1 ]
Castagnoli, Luisa [2 ]
Seliktar, Dror [5 ]
Garstecki, Piotr [6 ]
Cesareni, Gianni [2 ]
Cannata, Stefano [2 ]
Rainer, Alberto [1 ]
Gargioli, Cesare [2 ]
机构
[1] Univ Campus Biomed Roma, Tissue Engn Lab, Via Alvaro Portillo 21, I-00128 Rome, Italy
[2] Univ Roma Tor Vergata, Dept Biol, Via Ric Sci Snc, I-00133 Rome, Italy
[3] Sapienza Univ Rome, Dept Chem, Rome, Italy
[4] Warsaw Univ Technol, Fac Mat Sci & Engn, Warsaw, Poland
[5] Techion Inst, Dept Biomed Engn, Haifa, Israel
[6] Polish Acad Sci, Inst Phys Chem, PL-01224 Warsaw, Poland
基金
欧洲研究理事会;
关键词
Microfluidic enhanced 3D bioprinting; Myogenic precursor cells; Myotubes; PEG-Fibrinogen hydrogel; Artificial muscle; SKELETAL-MUSCLE; POLYETHYLENE-GLYCOL; ENGINEERED MUSCLE; STEM-CELLS; SCAFFOLDS; DIFFERENTIATION; CONSTRUCTS; REPAIR; REGENERATION; GENERATION;
D O I
10.1016/j.biomaterials.2017.03.026
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional morphologies based on an innovative 3D bioprinting approach. The methodology is based on a microfluidic printing head coupled to a co-axial needle extruder for high-resolution 3D bioprinting of hydrogel fibers laden with muscle precursor cells (C2C12). To promote myogenic differentiation, we formulated a tailored bioink with a photocurable semi-synthetic biopolymer (PEG-Fibrinogen) encapsulating cells into 3D constructs composed of aligned hydrogel fibers. After 3-5 days of culture, the encapsulated myoblasts started migrating and fusing, forming multinucleated myotubes within the 3D bioprinted fibers. The obtained myotubes showed high degree of alignment along the direction of hydrogel fiber deposition, further revealing maturation, sarcomerogenesis, and functionality. Following subcutaneous implantation in the back of immunocompromised mice, bioprinted constructs generated organized artificial muscle tissue in vivo. Finally, we demonstrate that our microfluidic printing head allows to design three dimensional multi-cellular assemblies with an exquisite compartmentalization of the encapsulated cells. Our results demonstrate an enhanced myogenic differentiation with the formation of parallel aligned long-range myotubes. The approach that we report here represents a robust and valid candidate for the fabrication of macroscopic artificial muscle to scale up skeletal muscle tissue engineering for human clinical application. (C) 2017 The Author(s). Published by Elsevier Ltd.
引用
收藏
页码:98 / 110
页数:13
相关论文
共 46 条
[1]   Biosynthetic hydrogel scaffolds made from fibrinogen and polyethylene glycol for 3D cell cultures [J].
Almany, L ;
Seliktar, D .
BIOMATERIALS, 2005, 26 (15) :2467-2477
[2]   Direct-write bioprinting of cell-laden methacrylated gelatin hydrogels [J].
Bertassoni, Luiz E. ;
Cardoso, Juliana C. ;
Manoharan, Vijayan ;
Cristino, Ana L. ;
Bhise, Nupura S. ;
Araujo, Wesleyan A. ;
Zorlutuna, Pinar ;
Vrana, Nihal E. ;
Ghaemmaghami, Amir M. ;
Dokmeci, Mehmet R. ;
Khademhosseini, Ali .
BIOFABRICATION, 2014, 6 (02)
[3]  
Buckingham M., SKELET MUSCLE REPAIR, P19
[4]  
Centola M, 2013, TISSUE ENG PT A, V19, P1960, DOI [10.1089/ten.tea.2012.0455, 10.1089/ten.TEA.2012.0455]
[5]   4D Printing Technology: A Review [J].
Choi, Jin ;
Kwon, O-Chang ;
Jo, Wonjin ;
Lee, Heon Ju ;
Moon, Myoung-Woon .
3D PRINTING AND ADDITIVE MANUFACTURING, 2015, 2 (04) :159-167
[6]  
Choi Y. J., 2016, ANN OPER RES, P1
[7]   Microfl uidic Bioprinting of Heterogeneous 3D Tissue Constructs Using Low-Viscosity Bioink [J].
Colosi, Cristina ;
Shin, Su Ryon ;
Manoharan, Vijayan ;
Massa, Solange ;
Costantini, Marco ;
Barbetta, Andrea ;
Dokmeci, Mehmet Remzi ;
Dentini, Mariella ;
Khademhosseini, Ali .
ADVANCED MATERIALS, 2016, 28 (04) :677-684
[8]   Rapid prototyping of chitosan-coated alginate scaffolds through the use of a 3D fiber deposition technique [J].
Colosi, Cristina ;
Costantini, Marco ;
Latini, Roberta ;
Ciccarelli, Serena ;
Stampella, Alessandra ;
Barbetta, Andrea ;
Massimi, Mara ;
Devirgiliis, Laura Conti ;
Dentini, Mariella .
JOURNAL OF MATERIALS CHEMISTRY B, 2014, 2 (39) :6779-6791
[9]   Morphological Comparison of PVA Scaffolds Obtained by Gas Foaming and Microfluidic Foaming Techniques [J].
Colosi, Cristina ;
Costantini, Marco ;
Barbetta, Andrea ;
Pecci, Raffaella ;
Bedini, Rossella ;
Dentini, Mariella .
LANGMUIR, 2013, 29 (01) :82-91
[10]   C2C12 co-culture on a fibroblast substratum enables sustained survival of contractile, highly differentiated myotubes with peripheral nuclei and adult fast myosin expression [J].
Cooper, ST ;
Maxwell, AL ;
Kizana, E ;
Ghoddusi, M ;
Hardeman, EC ;
Alexander, IE ;
Allen, DG ;
North, KN .
CELL MOTILITY AND THE CYTOSKELETON, 2004, 58 (03) :200-211