Conductive nanofibrous Chitosan/PEDOT:PSS tissue engineering scaffolds

被引:103
作者
Abedi, Ali [1 ]
Hasanzadeh, Mahdi [2 ]
Tayebi, Lobat [3 ]
机构
[1] Univ Tehran, Fac Biomed Engn, Dept Tissue Engn, Tehran 1439957131, Iran
[2] Yazd Univ, Dept Text Engn, POB 89195-741, Yazd, Iran
[3] Marquette Univ, Sch Dent, Milwaukee, WI 53201 USA
关键词
PEDOT:PSS; Chitosan; Electrospinning; Cardiac tissue engineering; Electrical conductivity; FIBER DIAMETER; MECHANICAL-PROPERTIES; POLYMER; COMPOSITE; ADHESION; ALCOHOL); FABRICATION; ACTUATION; GRAPHENE;
D O I
10.1016/j.matchemphys.2019.121882
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Design of a proper scaffold is the first step in fabrication of a tissue engineering product, which should be able to support cellular growth in in vitro conditions. This study focuses on the fabrication and characterization of chitosan (CS) scaffolds containing PEDOT:PSS, a conductive polymer. The scaffold is primarily designed for cardiac tissue engineering, although it can be used for other applications too. Chitosan scaffolds containing 0.3, 0.6 and 1 wt% of PEDOT:PSS are fabricated through electrospinning. The structure and morphology of scaffolds are characterized by scanning electron microscopy (SEM), 3D Laser Measuring Microscopy and Fourier-transform infrared spectroscopy (FTIR). The electrical and mechanical properties, as well as biocompatibility and cell viability of scaffolds are also investigated. It is found that addition of PEDOT:PSS to chitosan scaffold not only enhances the mechanical properties and electrical conductivity of electrospun scaffolds, but also improves their biocompatibility and cell viability. Our results have shown that increasing the PEDOT:PSS content up to 1 wt% results in 30-40% reduction of fiber diameter and increase in electrical conductivity by around 100-fold. Additionally, in the scaffold containing 1 wt% of PEDOT:PSS, the tensile strength increases about 9 MPa compared to the neat sample. Results obtained from scaffolds compared with the properties of native myocardium extracellular matrix reveal its potential application for cardiac tissue engineering.
引用
收藏
页数:8
相关论文
共 66 条
[1]   Effect of Fiber Size on Structural and Tensile Properties of Electrospun Polyvinylidene Fluoride Fibers [J].
Baji, Avinash ;
Mai, Yiu-Wing ;
Wong, Shing-Chung .
POLYMER ENGINEERING AND SCIENCE, 2015, 55 (08) :1812-1817
[2]   Electrospinning of polymer nanofibers: Effects on oriented morphology, structures and tensile properties [J].
Baji, Avinash ;
Mai, Yiu-Wing ;
Wong, Shing-Chung ;
Abtahi, Mojtaba ;
Chen, Pei .
COMPOSITES SCIENCE AND TECHNOLOGY, 2010, 70 (05) :703-718
[3]   Conductive polymers: Towards a smart biomaterial for tissue engineering [J].
Balint, Richard ;
Cassidy, Nigel J. ;
Cartmell, Sarah H. .
ACTA BIOMATERIALIA, 2014, 10 (06) :2341-2353
[4]   Mechanism of actuation in conducting polymers: Osmotic expansion [J].
Bay, L ;
Jacobsen, T ;
Skaarup, S ;
West, K .
JOURNAL OF PHYSICAL CHEMISTRY B, 2001, 105 (36) :8492-8497
[5]   Nano-fiber scaffold electrodes based on PEDOT for cell stimulation [J].
Bolin, Maria H. ;
Svennersten, Karl ;
Wang, Xiangjun ;
Chronakis, Ioannis S. ;
Richter-Dahlfors, Agneta ;
Jager, Edwin W. H. ;
Berggren, Magnus .
SENSORS AND ACTUATORS B-CHEMICAL, 2009, 142 (02) :451-456
[6]   A chemically polymerized electrically conducting composite of polypyrrole nanoparticles and polyurethane for tissue engineering [J].
Broda, Christopher R. ;
Lee, Jae Y. ;
Sirivisoot, Sirinrath ;
Schmidt, Christine E. ;
Harrison, Benjamin S. .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2011, 98A (04) :509-516
[7]  
Bronzino J.D., 1999, The Biomedical Engineering Handbook, V2
[8]   Lateral spacing of integrin ligands influences cell spreading and focal adhesion assembly [J].
Cavalcanti-Adam, EA ;
Micoulet, A ;
Blümmel, J ;
Auernheimer, J ;
Kessler, H ;
Spatz, JP .
EUROPEAN JOURNAL OF CELL BIOLOGY, 2006, 85 (3-4) :219-224
[9]   Role of fiber diameter in adhesion and proliferation of NIH 3T3 fibroblast on electrospun polycaprolactone scaffolds [J].
Chen, Ming ;
Patra, Prabir K. ;
Warner, Steven B. ;
Bhowmick, Sankha .
TISSUE ENGINEERING, 2007, 13 (03) :579-587
[10]  
Collier JH, 2000, J BIOMED MATER RES, V50, P574, DOI 10.1002/(SICI)1097-4636(20000615)50:4<574::AID-JBM13>3.0.CO