Fabrication and characterization of conductive chitosan/gelatin-based scaffolds for nerve tissue engineering

被引:147
作者
Baniasadi, Hossein [1 ]
Ramazani, Ahmad S. A. [1 ]
Mashayekhan, Shohreh [1 ]
机构
[1] Sharif Univ Technol, Dept Chem & Petr Engn, Tehran, Iran
关键词
PAG; Conductivity; Biocompatibility; COMPOSITE; POLYMERS; GELATIN; ANTIOXIDANT; POLYANILINE; FILMS; BIOCOMPATIBILITY; NANOMATERIALS; MICROSPHERES; STIMULATION;
D O I
10.1016/j.ijbiomac.2014.12.014
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
This paper reports on the development of conductive porous scaffolds by incorporating conductive polyaniline/graphene (PAG) nanoparticles into a chitosan/gelatin matrix for its potential application in peripheral nerve regeneration. The effect of FAG content on the various properties of the scaffold is investigated and the results showed that the electrical conductivity and mechanical properties increased proportional to the increase in the FAG loading, while the porosity, swelling ratio and in vitro biodegradability decreased. In addition, the biocompatibility was evaluated by assessing the adhesion and proliferation of Schwann cells on the prepared scaffolds using SEM and MTT assay, respectively. In summary, this work supports the use of a porous conductive chitosan/gelatin/PAG scaffold with a low amount of PAG (2.5 wt.%) as a suitable material having proper conductivity, mechanical properties and biocompatibility that may be appropriate for different biomedical applications such as scaffold material in tissue engineering for neural repair or other biomedical devices that require electroactivity. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:360 / 366
页数:7
相关论文
共 52 条
[1]  
Abe H., 1996, DATA BOOK MECH PROPE
[2]   Microstructure and characteristic properties of gelatin/chitosan scaffold prepared by a combined freeze-drying/leaching method [J].
Alizadeh, M. ;
Abbasi, F. ;
Khoshfetrat, A. B. ;
Ghaleh, H. .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2013, 33 (07) :3958-3967
[3]   Fabrication and characterization of chitosan-gelatin/nanohydroxyapatite-polyaniline composite with potential application in tissue engineering scaffolds [J].
Azhar, Fahimeh Farshi ;
Olad, Ali ;
Salehi, Roya .
DESIGNED MONOMERS AND POLYMERS, 2014, 17 (07) :654-667
[4]   Preparation of conductive polyaniline/graphene nanocomposites via in situ emulsion polymerization and product characterization [J].
Baniasadi, Hossein ;
Ramazani, Ahmad S. A. ;
Mashayekhan, Shohreh ;
Ghaderinezhad, Fariba .
SYNTHETIC METALS, 2014, 196 :199-205
[5]   Electroactive Electrospun Polyaniline/Poly[(L-lactide)-co-(e-caprolactone)] Fibers for Control of Neural Cell Function [J].
Bhang, Suk Ho ;
Jeong, Sung In ;
Lee, Tae-Jin ;
Jun, Indong ;
Lee, Yu Bin ;
Kim, Byung-Soo ;
Shin, Heungsoo .
MACROMOLECULAR BIOSCIENCE, 2012, 12 (03) :402-411
[6]   Freeze-gelled silk fibroin protein scaffolds for potential applications in soft tissue engineering [J].
Bhardwaj, Nandana ;
Chakraborty, Sagar ;
Kundu, Subhas C. .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2011, 49 (03) :260-267
[7]   Polyaniline, an electroactive polymer, supports adhesion and proliferation of cardiac myoblasts [J].
Bidez, PR ;
Li, SX ;
MacDiarmid, AG ;
Venancio, EC ;
Wei, Y ;
Lelkes, PI .
JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2006, 17 (1-2) :199-212
[8]   Porous Scaffolds Based on Cross-Linking of Poly(L-glutamic acid) [J].
Cao, Bin ;
Yin, Jingbo ;
Yan, Shifeng ;
Cui, Lei ;
Chen, Xuesi ;
Xie, Yongtao .
MACROMOLECULAR BIOSCIENCE, 2011, 11 (03) :427-434
[9]   Materials for peripheral nerve regeneration [J].
Ciardelli, G ;
Chiono, V .
MACROMOLECULAR BIOSCIENCE, 2006, 6 (01) :13-26
[10]  
Dalton P., 2008, TISSUE ENG TISSUE EN