Electrospun Carbon Nanotube-Based Scaffolds Exhibit High Conductivity and Cytocompatibility for Tissue Engineering Applications

被引:18
作者
Suh, Taylor C. [1 ]
Twiddy, Jack [2 ,3 ]
Mahmood, Nasif [1 ]
Ali, Kiran M. [1 ]
Lubna, Mostakima M. [1 ]
Bradford, Philip D. [1 ]
Daniele, Michael A. [2 ,3 ,4 ]
Gluck, Jessica M. [1 ]
机构
[1] North Carolina State Univ, Dept Text Engn Chem & Sci, Raleigh, NC 27606 USA
[2] North Carolina State Univ, Joint Dept Biomed Engn, Raleigh, NC 27606 USA
[3] Univ North Carolina Chapel Hill, Raleigh, NC 27606 USA
[4] North Carolina State Univ, Dept Elect & Comp Engn, Raleigh, NC 27606 USA
基金
美国国家科学基金会;
关键词
ELECTRICAL-STIMULATION; STEM-CELLS; DIFFERENTIATION; CARDIOMYOCYTES; MATURATION; NANOFIBERS; DIAMETER; BIOCOMPATIBILITY; PROLIFERATION; BIOMATERIALS;
D O I
10.1021/acsomega.2c01807
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Carbon nanotubes (CNTs) are known for their excellent conductive properties. Here, we present two novel methods, "sandwich" (sCNT) and dual deposition (DD CNT), for incorporating CNTs into electrospun polycaprolactone (PCL) and gelatin scaffolds to increase their conductance. Based on CNT percentage, the DD CNT scaffolds contain significantly higher quantities of CNTs than the sCNT scaffolds. The inclusion of CNTs increased the electrical conductance of scaffolds from 0.0 +/- 0.00 kS (non-CNT) to 0.54 +/- 0.10 kS (sCNT) and 5.22 +/- 0.49 kS (DD CNT) when measured parallel to CNT arrays and to 0.25 +/- 0.003 kS (sCNT) and 2.85 +/- 1.12 (DD CNT) when measured orthogonally to CNT arrays. The inclusion of CNTs increased fiber diameter and pore size, promoting cellular migration into the scaffolds. CNT inclusion also decreased the degradation rate and increased hydrophobicity of scaffolds. Additionally, CNT inclusion increased Young's modulus and failure load of scaffolds, increasing their mechanical robustness. Murine fibroblasts were maintained on the scaffolds for 30 days, demonstrating high cytocompatibility. The increased conductivity and high cytocompatibility of the CNT-incorporated scaffolds make them appropriate candidates for future use in cardiac and neural tissue engineering.
引用
收藏
页码:20006 / 20019
页数:14
相关论文
共 50 条
[41]   Needleless electrospun and centrifugal spun poly-ε-caprolactone scaffolds as a carrier for platelets in tissue engineering applications: A comparative study with hMSCs [J].
Lukasova, V. ;
Buzgo, M. ;
Vocetkova, K. ;
Sovkova, V. ;
Doupnik, M. ;
Himawan, E. ;
Staffa, A. ;
Sedlacek, R. ;
Chlup, H. ;
Rustichelli, F. ;
Amler, E. ;
Rampichova, M. .
MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2019, 97 :567-575
[42]   Graphene-Based Scaffolds: Fundamentals and Applications for Cardiovascular Tissue Engineering [J].
Savchenko, Alex ;
Yin, Rose T. ;
Kireev, Dmitry ;
Efimov, Igor R. ;
Molokanova, Elena .
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2021, 9
[43]   Tuning polycaprolactone-carbon nanotube composites for bone tissue engineering scaffolds [J].
Mattioli-Belmonte, Monica ;
Vozzi, Giovanni ;
Whulanza, Yudan ;
Seggiani, Maurizia ;
Fantauzzi, Valentina ;
Orsini, Giovanna ;
Ahluwalia, Arti .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2012, 32 (02) :152-159
[44]   Biopolymer-based Scaffolds for Tissue Engineering Applications [J].
Chopra, Hitesh ;
Kumar, Sandeep ;
Singh, Inderbir .
CURRENT DRUG TARGETS, 2021, 22 (03) :282-295
[45]   Halloysite nanotubes-decorated electrospun biobased polyamide scaffolds for tissue engineering applications [J].
Zhang, Yuhui ;
Meng, Rui ;
Zhou, Jing ;
Liu, Xiucai ;
Guo, Weihong .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2022, 648
[46]   Covalent immobilisation of VEGF on plasma-coated electrospun scaffolds for tissue engineering applications [J].
Guex, A. G. ;
Hegemann, D. ;
Giraud, M. N. ;
Tevaearai, H. T. ;
Popa, A. M. ;
Rossi, R. M. ;
Fortunato, G. .
COLLOIDS AND SURFACES B-BIOINTERFACES, 2014, 123 :724-733
[47]   Polymer-based hydrogel scaffolds for skin tissue engineering applications: a mini-review [J].
Jeong, Kwang-Hun ;
Park, Duckshin ;
Lee, Young-Chul .
JOURNAL OF POLYMER RESEARCH, 2017, 24 (07)
[48]   Multiwalled carbon nanotube-coating of 3D collagen scaffolds for bone tissue engineering [J].
Hirata, Eri ;
Uo, Motohiro ;
Takita, Hiroko ;
Akasaka, Tsukasa ;
Watari, Fumio ;
Yokoyama, Atsuro .
CARBON, 2011, 49 (10) :3284-3291
[49]   Effect of Electrospun PLGA/Collagen Scaffolds on Cell Adhesion, Viability, and Collagen Release: Potential Applications in Tissue Engineering [J].
Guzman-Soria, Aldo ;
Moreno-Serna, Viviana ;
Canales, Daniel A. ;
Garcia-Herrera, Claudio ;
Zapata, Paula A. ;
Orihuela, Pedro A. .
POLYMERS, 2023, 15 (05)
[50]   Chemically modified and doped carbon nanotube-based nanocomposites with tunable thermal conductivity gradient [J].
Li, Yuan ;
Chopra, Nitin .
CARBON, 2014, 77 :675-687