Moldable elastomeric polyester-carbon nanotube scaffolds for cardiac tissue engineering

被引:122
作者
Ahadian, Samad [1 ]
Huyer, Locke Davenport [1 ,2 ]
Estili, Mehdi [3 ]
Yee, Bess [2 ]
Smith, Nathaniel [2 ]
Xu, Zhensong [4 ]
Sun, Yu [4 ]
Radisic, Milica [1 ,2 ]
机构
[1] Univ Toronto, Inst Biomat & Biomed Engn, Toronto, ON M5S 3G9, Canada
[2] Univ Toronto, Dept Chem Engn & Appl Chem, Toronto, ON, Canada
[3] Natl Inst Mat Sci, Funct Mat Res Ctr, Ceram Proc Grp, Tsukuba, Ibaraki, Japan
[4] Univ Toronto, Dept Mech & Ind Engn, Adv Micro & Nanosyst Lab, Toronto, ON, Canada
基金
加拿大自然科学与工程研究理事会; 加拿大健康研究院;
关键词
Carbon nanotubes; Scaffold; Cardiac tissue engineering; Elastomer; Electrical conductivity; Maturation; ELECTRICAL-CONDUCTIVITY; HYBRID HYDROGELS; MUSCLE; DIFFERENTIATION; STIMULATION; FABRICATION; NANOFIBER; CHITOSAN; PEPTIDE; STRAIN;
D O I
10.1016/j.actbio.2016.12.009
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
Polymer biomaterials are used to construct scaffolds in tissue engineering applications to assist in mechanical support, organization, and maturation of tissues. Given the flexibility, electrical conductance, and contractility of native cardiac tissues, it is desirable that polymeric scaffolds for cardiac tissue regeneration exhibit elasticity and high electrical conductivity. Herein, we developed a facile approach to introduce carbon nanotubes (CNTs) into poly(octamethylene maleate (anhydride) 1,2,4-butanetricarboxylate) (124 polymer), and developed an elastomeric scaffold for cardiac tissue engineering that provides electrical conductivity and structural integrity to 124 polymer. 124 polymer-CNT materials were developed by first dispersing CNTs in poly(ethylene glycol) dimethyl ether porogen and mixing with 124 prepolymer for molding into shapes and crosslinking under ultraviolet light. 124 polymers with 0.5% and 0.1% CNT content (wt) exhibited improved conductivity against pristine 124 polymer. With increasing the CNT content, surface moduli of hybrid polymers were increased, while their bulk moduli were decreased. Furthermore, increased swelling of hybrid 124 polymer-CNT materials was observed, suggesting their improved structural support in an aqueous environment. Finally, functional characterization of engineered cardiac tissues using the 124 polymer-CNT scaffolds demonstrated improved excitation threshold in materials with 0.5% CNT content (3.6 +/- 0.8 V/cm) compared to materials with 0% (5.1 +/- 0.8 V/cm) and 0.1% (5.0 +/- 0.7 V/cm), suggesting greater tissue maturity. 124 polymer-CNT materials build on the advantages of 124 polymer elastomer to give a versatile biomaterial for cardiac tissue engineering applications. Statement of Significance Achieving a high elasticity and a high conductivity in a single cardiac tissue engineering material remains a challenge. We report the use of CNTs in making electrically conductive and mechanically strong polymeric scaffolds in cardiac tissue regeneration. CNTs were incorporated in elastomeric polymers in a facile and reproducible approach. Polymer-CNT materials were able to construct complicated scaffold structures by injecting the prepolymer into a mold and crosslinking the prepolymer under ultraviolet light. CNTs enhanced electrical conductivity and structural support of elastomeric polymers. Hybrid polymeric scaffolds containing 0.5 wt% CNTs increased the maturation of cardiac tissues fabricated on them compared to pure polymeric scaffolds. The cardiac tissues on hybrid polymer-CNT scaffolds showed earlier beating than those on pure polymer scaffolds. In the future, fabricated polymer-CNT scaffolds could also be used to fabricate other electro-active tissues, such neural and skeletal muscle tissues. In the future, fabricated polymer-CNT scaffolds could also be used to fabricate other electro-active tissues, such as neural and skeletal muscle tissues. (C) 2016 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:81 / 91
页数:11
相关论文
共 58 条
[1]
Carbon Nanotubes and Graphene-Based Nanomaterials for Stem Cell Differentiation and Tissue Regeneration [J].
Ahadian, Samad ;
Obregon, Raquel ;
Ramon-Azcon, Javier ;
Salazar, Georgina ;
Shiku, Hitoshi ;
Ramalingam, Murugan ;
Matsue, Tomokazu .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2016, 16 (09) :8862-8880
[2]
Graphene induces spontaneous cardiac differentiation in embryoid bodies [J].
Ahadian, Samad ;
Zhou, Yuanshu ;
Yamada, Shukuyo ;
Estili, Mehdi ;
Liang, Xiaobin ;
Nakajima, Ken ;
Shiku, Hitoshi ;
Matsue, Tomokazu .
NANOSCALE, 2016, 8 (13) :7075-7084
[3]
Hybrid hydrogel-aligned carbon nanotube scaffolds to enhance cardiac differentiation of embryoid bodies [J].
Ahadian, Samad ;
Yamada, Shukuyo ;
Ramon-Azcon, Javier ;
Estili, Mehdi ;
Liang, Xiaobin ;
Nakajima, Ken ;
Shiku, Hitoshi ;
Khademhosseini, Ali ;
Matsue, Tomokazu .
ACTA BIOMATERIALIA, 2016, 31 :134-143
[4]
Hydrogels containing metallic glass sub-micron wires for regulating skeletal muscle cell behaviour [J].
Ahadian, Samad ;
Sadeghian, Ramin Banan ;
Yaginuma, Shin ;
Ramon-Azcon, Javier ;
Nashimoto, Yuji ;
Liang, Xiaobin ;
Bae, Hojae ;
Nakajima, Ken ;
Shiku, Hitoshi ;
Matsue, Tomokazu ;
Nakayama, Koji S. ;
Khademhosseini, Ali .
BIOMATERIALS SCIENCE, 2015, 3 (11) :1449-1458
[5]
Hybrid hydrogels containing vertically aligned carbon nanotubes with anisotropic electrical conductivity for muscle myofiber fabrication [J].
Ahadian, Samad ;
Ramon-Azcon, Javier ;
Estili, Mehdi ;
Liang, Xiaobin ;
Ostrovidov, Serge ;
Shiku, Hitoshi ;
Ramalingam, Murugan ;
Nakajima, Ken ;
Sakka, Yoshio ;
Bae, Hojae ;
Matsue, Tomokazu ;
Khademhosseini, Ali .
SCIENTIFIC REPORTS, 2014, 4
[6]
Electrical stimulation as a biomimicry tool for regulating muscle cell behavior [J].
Ahadian, Samad ;
Ostrovidov, Serge ;
Hosseini, Vahid ;
Kaji, Hirokazu ;
Ramalingam, Murugan ;
Bae, Hojae ;
Khademhosseini, Ali .
ORGANOGENESIS, 2013, 9 (02) :87-92
[7]
Mechanical stretch regimen enhances the formation of bioengineered autologous cardiac muscle grafts [J].
Akhyari, P ;
Fedak, PWM ;
Weisel, RD ;
Lee, TYJ ;
Verma, S ;
Mickle, DAG ;
Li, RK .
CIRCULATION, 2002, 106 (13) :I137-I142
[8]
Polyurethane films seeded with embryonic stem cell-derived cardiomyocytes for use in cardiac tissue engineering applications [J].
Alperin, C ;
Zandstra, PW ;
Woodhouse, KA .
BIOMATERIALS, 2005, 26 (35) :7377-7386
[9]
Highly Elastic and Conductive Human-Based Protein Hybrid Hydrogels [J].
Annabi, Nasim ;
Shin, Su Ryon ;
Tamayol, Ali ;
Miscuglio, Mario ;
Bakooshli, Mohsen Afshar ;
Assmann, Alexander ;
Mostafalu, Pooria ;
Sun, Jeong-Yun ;
Mithieux, Suzanne ;
Cheung, Louis ;
Tang, Xiaowu ;
Weiss, Anthony S. ;
Khademhosseini, Ali .
ADVANCED MATERIALS, 2016, 28 (01) :40-+
[10]
Bio-Inspired Carbon Nanotube-Polymer Composite Yarns with Hydrogen Bond-Mediated Lateral Interactions [J].
Beese, Allison M. ;
Sarkar, Sourangsu ;
Nair, Arun ;
Naraghi, Mohammad ;
An, Zhi ;
Moravsky, Alexander ;
Loutfy, Raouf O. ;
Buehler, Markus J. ;
Nguyen, SonBinh T. ;
Espinosa, Horacio D. .
ACS NANO, 2013, 7 (04) :3434-3446