Optimizing Blended Collagen-Fibrin Hydrogels for Cardiac Tissue Engineering with Human iPSC-derived Cardiomyocytes

被引:97
作者
Kaiser, Nicholas J. [1 ]
Kant, Rajeev J. [1 ]
Minor, Alicia J. [1 ]
Coulombe, Kareen L. K. [1 ]
机构
[1] Brown Univ, Ctr Biomed Engn, Providence, RI 02912 USA
关键词
tissue engineering; hydrogel; collagen; fibrin; design of experiments; hiPSC-derived cardiomyocytes; MESENCHYMAL STEM-CELLS; SUBSTRATE STIFFNESS; HUMAN MYOCARDIUM; IN-VITRO; HEART; DIFFERENTIATION; SCAFFOLD; MATURATION; DESIGN; EXPRESSION;
D O I
10.1021/acsbiomaterials.8b01112
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
Natural polymer hydrogels are used ubiquitously as scaffold materials for cardiac tissue engineering as well as for soft tissue engineering more broadly because of FDA approval, minimal immunogenicity, and well-defined physiological clearance pathways. However, the relationships between natural polymer hydrogels and resident cell populations in directing the development of engineered tissues are poorly defined. This interaction is of particular concern for tissues prepared with iPSC-derived cell populations, in which population purity and batch-to-batch variability become additional critical factors to consider. Herein, the design space for a blended fibrin and collagen scaffold is characterized for applications in creating engineered myocardium with human iPSC-derived cardiomyocytes. Stiffness values of the acellular hydrogel formulations approach those of native myocardium in compression, but deviate significantly in tension when compared to rat myocardium in both transverse and longitudinal fiber orientations. A response surface methodology approach to understanding the relationship between collagen concentration, fibrin concentration, seeding density, and cardiac purity found a statistically significant predictive model across three repeated studies that confirms that all of these factors contribute to tissue compaction. In these constructs, increased fibrin concentration and seeding density were each associated with increased compaction, while increased collagen concentration was associated with decreased compaction. Both the lowest (24.4% cTnT(+)) and highest (60.2% cTnT(+)) cardiomyocyte purities evaluated were associated with decreased compaction, whereas the greatest compaction was predicted to occur in constructs prepared with a 40-50% cTnT(+) population. Constructs prepared with purified cardiomyocytes (>= 75.5% cTnT(+)) compacted and formed syncytia well, although increased fibrin concentration in these groups was associated with decreased compaction, a reversal of the trend observed in unpurified cardiomyocytes. This study demonstrates an analytical approach to understanding cell-scaffold interactions in engineered tissues and provides a foundation for the development of more sophisticated and customized scaffold platforms for human cardiac tissue engineering.
引用
收藏
页码:887 / 899
页数:25
相关论文
共 62 条
[41]   BODY FORCES AND PRESSURES IN ELASTIC MODELS OF THE MYOCARDIUM [J].
PIERCE, WH .
BIOPHYSICAL JOURNAL, 1981, 34 (01) :35-59
[42]   Functional assembly of engineered myocardium by electrical stimulation of cardiac myocytes cultured on scaffolds [J].
Radisic, M ;
Park, H ;
Shing, H ;
Consi, T ;
Schoen, FJ ;
Langer, R ;
Freed, LE ;
Vunjak-Novakovic, G .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (52) :18129-18134
[43]   High-density seeding of myocyte cells for cardiac tissue engineering [J].
Radisic, M ;
Euloth, M ;
Yang, LM ;
Langer, R ;
Freed, LE ;
Vunjak-Novakovic, G .
BIOTECHNOLOGY AND BIOENGINEERING, 2003, 82 (04) :403-414
[44]   Concise Review: Maturation Phases of Human Pluripotent Stem Cell-Derived Cardiomyocytes [J].
Robertson, Claire ;
Tran, David D. ;
George, Steven C. .
STEM CELLS, 2013, 31 (05) :829-837
[45]   Advanced maturation of human cardiac tissue grown from pluripotent stem cells [J].
Ronaldson-Bouchard, Kacey ;
Ma, Stephen P. ;
Yeager, Keith ;
Chen, Timothy ;
Song, LouJin ;
Sirabella, Dario ;
Morikawa, Kumi ;
Teles, Diogo ;
Yazawa, Masayuki ;
Vunjak-Novakovic, Gordana .
NATURE, 2018, 556 (7700) :239-+
[46]   IGF1 and NRG1 Enhance Proliferation, Metabolic Maturity, and the Force-Frequency Response in hESC-Derived Engineered Cardiac Tissues [J].
Rupert, Cassady E. ;
Coulombe, Kareen L. K. .
STEM CELLS INTERNATIONAL, 2017, 2017
[47]   Cardiac Fibroblast to Myofibroblast Differentiation In Vivo and In Vitro: Expression of Focal Adhesion Components in Neonatal and Adult Rat Ventricular Myofibroblasts [J].
Santiago, Jon-Jon ;
Dangerfield, Aran L. ;
Rattan, Sunil G. ;
Bathe, Krista L. ;
Cunnington, Ryan H. ;
Raizman, Joshua E. ;
Bedosky, Kristen M. ;
Freed, Darren H. ;
Kardami, Elissavet ;
Dixon, Ian M. C. .
DEVELOPMENTAL DYNAMICS, 2010, 239 (06) :1573-1584
[48]  
Schaefer JA, 2016, TISSUE ENG PART C-ME, V22, P76, DOI [10.1089/ten.tec.2015.0220, 10.1089/ten.TEC.2015.0220]
[49]  
Sears NA, 2016, TISSUE ENG PART B-RE, V22, P298, DOI [10.1089/ten.teb.2015.0464, 10.1089/ten.TEB.2015.0464]
[50]   Fibroblasts in myocardial infarction: A role in inflammation and repair [J].
Shinde, Arti V. ;
Frangogiannis, Nikolaos G. .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2014, 70 :74-82