Three dimensional multi-cellular muscle-like tissue engineering in perfusion-based bioreactors

被引:33
作者
Cerino, Giulia [1 ,2 ]
Gaudiello, Emanuele [1 ,2 ]
Grussenmeyer, Thomas [1 ,2 ]
Melly, Ludovic [1 ,2 ]
Massai, Diana [3 ]
Banfi, Andrea [1 ,2 ]
Martin, Ivan [1 ,2 ]
Eckstein, Friedrich [1 ,2 ]
Grapow, Martin [1 ,2 ]
Marsano, Anna [1 ,2 ]
机构
[1] Univ Basel, Dept Biomed, CH-4031 Basel, Switzerland
[2] Univ Basel Hosp, Dept Surg, CH-4031 Basel, Switzerland
[3] Politecn Torino, Dept Mech & Aerosp Engn, Turin, Italy
关键词
tissue engineering; bioreactor; perfusion; skeletal myoblasts; stromal cells; serum percentage; MYOGENIC DIFFERENTIATION; ENDOTHELIAL-CELLS; CARDIAC-MUSCLE; STROMAL CELLS; MOUSE C2C12; CULTURE; SCAFFOLDS; CARDIOMYOCYTES; MYOBLASTS; LINE;
D O I
10.1002/bit.25688
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 [微生物学]; 090105 [作物生产系统与生态工程];
摘要
Conventional tissue engineering strategies often rely on the use of a single progenitor cell source to engineer in vitro biological models; however, multi-cellular environments can better resemble the complexity of native tissues. Previous described co-culture models used skeletal myoblasts, as parenchymal cell source, and mesenchymal or endothelial cells, as stromal component. Here, we propose instead the use of adipose tissue-derived stromal vascular fraction cells, which include both mesenchymal and endothelial cells, to better resemble the native stroma. Percentage of serum supplementation is one of the crucial parameters to steer skeletal myoblasts toward either proliferation (20%) or differentiation (5%) in two-dimensional culture conditions. On the contrary, three-dimensional (3D) skeletal myoblast culture often simply adopts the serum content used in monolayer, without taking into account the new cell environment. When considering 3D cultures of mm-thick engineered tissues, homogeneous and sufficient oxygen supply is paramount to avoid formation of necrotic cores. Perfusion-based bioreactor culture can significantly improve the oxygen access to the cells, enhancing the viability and the contractility of the engineered tissues. In this study, we first investigated the influence of different serum supplementations on the skeletal myoblast ability to proliferate and differentiate during 3D perfusion-based culture. We tested percentages of serum promoting monolayer skeletal myoblast-proliferation (20%) and differentiation (5%) and suitable for stromal cell culture (10%) with a view to identify the most suitable condition for the subsequent co-culture. The 10% serum medium composition resulted in the highest number of mature myotubes and construct functionality. Co-culture with stromal vascular fraction cells at 10% serum also supported the skeletal myoblast differentiation and maturation, hence providing a functional engineered 3D muscle model that resembles the native multi-cellular environment. Biotechnol. Bioeng. 2016;113: 226-236. (c) 2015 Wiley Periodicals, Inc.
引用
收藏
页码:226 / 236
页数:11
相关论文
共 45 条
[1]
Bone marrow-derived stem cell interactions with adult cardiomyocytes and skeletal myoblasts in vitro [J].
Baffour, Richard ;
Pakala, Rajbabu ;
Hellinga, David ;
Joner, Michael ;
Okubagzi, Petros ;
Epstein, Stephen E. ;
Waksman, Ron .
CARDIOVASCULAR REVASCULARIZATION MEDICINE, 2006, 7 (04) :222-230
[2]
Patterning the differentiation of C2C12 skeletal myoblasts [J].
Bajaj, Piyush ;
Reddy, Bobby, Jr. ;
Millet, Larry ;
Wei, Chunan ;
Zorlutuna, Pinar ;
Bao, Gang ;
Bashir, Rashid .
INTEGRATIVE BIOLOGY, 2011, 3 (09) :897-909
[3]
PLASTICITY OF THE DIFFERENTIATED STATE [J].
BLAU, HM ;
PAVLATH, GK ;
HARDEMAN, EC ;
CHIU, CP ;
SILBERSTEIN, L ;
WEBSTER, SG ;
MILLER, SC ;
WEBSTER, C .
SCIENCE, 1985, 230 (4727) :758-766
[4]
Stromal cells from the adipose tissue-derived stromal vascular fraction and culture expanded adipose tissue-derived stromal/stem cells: a joint statement of the International Federation for Adipose Therapeutics and Science (IFATS) and the International Society for Cellular Therapy (ISCT) [J].
Bourin, Philippe ;
Bunnell, Bruce A. ;
Casteilla, Louis ;
Dominici, Massimo ;
Katz, Adam J. ;
March, Keith L. ;
Redl, Heinz ;
Rubin, J. Peter ;
Yoshimura, Kotaro ;
Gimble, Jeffrey M. .
CYTOTHERAPY, 2013, 15 (06) :641-648
[5]
Carrier RL, 1999, BIOTECHNOL BIOENG, V64, P580, DOI 10.1002/(SICI)1097-0290(19990905)64:5<580::AID-BIT8>3.0.CO
[6]
2-X
[7]
Perfusion improves tissue architecture of engineered cardiac muscle [J].
Carrier, RL ;
Rupnick, M ;
Langer, R ;
Schoen, FJ ;
Freed, LE ;
Vunjak-Novakovic, G .
TISSUE ENGINEERING, 2002, 8 (02) :175-188
[8]
Effects of oxygen on engineered cardiac muscle [J].
Carrier, RL ;
Rupnick, M ;
Langer, R ;
Schoen, FJ ;
Freed, LE ;
Vunjak-Novakovic, G .
BIOTECHNOLOGY AND BIOENGINEERING, 2002, 78 (06) :617-625
[9]
Conditions that promote primary human skeletal myoblast culture and muscle differentiation in vitro [J].
Cheng, Cindy S. ;
El-Abd, Yasser ;
Bui, Khanh ;
Hyun, Young-Eun ;
Hughes, Rebecca Harbuck ;
Kraus, William E. ;
Truskey, George A. .
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2014, 306 (04) :C385-C395
[10]
Growth and differentiation potentials in confluent state of culture of human skeletal muscle myoblasts [J].
Chowdhury, Shiplu Roy ;
Muneyuki, Yuichi ;
Takezawa, Yasunori ;
Kino-oka, Masahiro ;
Saito, Atsuhiro ;
Sawa, Yoshiki ;
Taya, Masahito .
JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2010, 109 (03) :310-313