Zero-valent iron nanoparticles containing nanofiber scaffolds for nerve tissue engineering

被引:9
作者
Sezer, Umran Aydemir [1 ,2 ,3 ]
Yavuz, Kevser Ozturk [4 ]
Ors, Gizem [5 ,7 ]
Bay, Sadik [6 ,7 ]
Aru, Basak Aru [8 ]
Sogut, Oguz [1 ]
Caglar, Tuba Akgul [6 ,7 ]
Bozkurt, Mehmet Recep [9 ]
Cagavi, Esra Cagavi [5 ,7 ]
Demirel, Gulderen Yanikkaya Demirel Yanikkaya [8 ]
Sezer, Serdar [1 ,2 ,3 ]
Karaca, Huseyin [10 ]
机构
[1] Suleyman Demirel Univ, Fac Med, Dept Pharmacol, Med Med Devices & Dermocosmet Res & Applicat Lab, TR-32260 Isparta, Turkey
[2] Inst Hlth Sci, Dept Regenerat Med, Isparta, Turkey
[3] Suleyman Demirel Univ, Sem Technol Ind & Trade Co Ltd, Lake Dist Technopk, Isparta, Turkey
[4] Gebze Tech Univ, Dept Chem, Kocaeli, Turkey
[5] Istanbul Medipol Univ, Sch Med, Dept Med Biol, Istanbul, Turkey
[6] Istanbul Medipol Univ, Inst Hlth, Neurosci PhD Programme, Istanbul, Turkey
[7] Istanbul Medipol Univ, Res Inst Hlth Sci & Technol SABITA, Regenerat & Restorat Med Res Ctr REMER, Istanbul, Turkey
[8] Yeditepe Univ, Fac Med, Immunol Dept, Istanbul, Turkey
[9] Sakarya Univ, Dept Elect & Elect Engn, Sakarya, Turkey
[10] Sakarya Univ, Dept Chem, Sakarya, Turkey
关键词
electrospin; iron nanoparticles; nerve regeneration; polycaprolactone; tissue engineering; zero valent; COMPOSITES; CONDUIT;
D O I
10.1002/term.3137
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Regeneration of nerve tissue is a challenging issue in regenerative medicine. Especially, the peripheral nerve defects related to the accidents are one of the leading health problems. For large degeneration of peripheral nerve, nerve grafts are used in order to obtain a connection. These grafts should be biodegradable to prevent second surgical intervention. In order to make more effective nerve tissue engineering materials, nanotechnological improvements were used. Especially, the addition of electrically conductive and biocompatible metallic particles and carbon structures has essential roles in the stimulation of nerves. However, the metabolizing of these structures remains to wonder because of their nondegradable nature. In this study, biodegradable and conductive nerve tissue engineering materials containing zero-valent iron (Fe) nanoparticles were developed and investigated under in vitro conditions. By using electrospinning technique, fibrous mats composed of electrospun poly(epsilon-caprolactone) (PCL) nanofibers and Fe nanoparticles were obtained. Both electrical conductivity and mechanical properties increased compared with control group that does not contain nanoparticles. Conductivity of PCL/Fe5 and PCL/Fe10 increased to 0.0041 and 0.0152 from 0.0013 Scm(-1), respectively. Cytotoxicity results indicated toxicity for composite mat containing 20% Fe nanoparticles (PCL/Fe20). SH-SY5Y cells were grown on PCL/Fe10 best, which contains 10% Fe nanoparticles. Beta III tubulin staining of dorsal root ganglion neurons seeded on mats revealed higher cell number on PCL/Fe10. This study demonstrated the impact of zero-valent Fe nanoparticles on nerve regeneration. The results showed the efficacy of the conductive nanoparticles, and the amount in the composition has essential roles in the promotion of the neurites.
引用
收藏
页码:1815 / 1826
页数:12
相关论文
共 42 条
[1]   Biodegradable Metals [J].
Aghion, Eli .
METALS, 2018, 8 (10)
[2]   Common biocompatible polymeric materials for tissue engineering and regenerative medicine [J].
Asadi, Nahideh ;
Del Bakhshayesh, Azizeh Rahmani ;
Davaran, Soodabeh ;
Akbarzadeh, Abolfazi .
MATERIALS CHEMISTRY AND PHYSICS, 2020, 242
[3]   Biocompatible conductive alginate/polyaniline-graphene neural conduits fabricated using a facile solution extrusion technique [J].
Bayat, Arman ;
Ramazani, S. A. Ahmad .
INTERNATIONAL JOURNAL OF POLYMERIC MATERIALS AND POLYMERIC BIOMATERIALS, 2021, 70 (07) :486-495
[4]  
Carluccio D., 2019, ADDITIVELY MANUFACTU, P1, DOI DOI 10.1016/J.ACTBIO.2019.12.018
[5]   Multichanneled Nerve Guidance Conduit with Spatial Gradients of Neurotrophic Factors and Oriented Nanotopography for Repairing the Peripheral Nervous System [J].
Chang, Yo-Cheng ;
Chen, Ming-Hong ;
Liao, Shih-Yung ;
Wu, Hsi-Chin ;
Kuan, Chen-Hsiang ;
Sun, Jui-Sheng ;
Wang, Tzu-Wei .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (43) :37623-37636
[6]   Enhanced electromagnetic interference shielding efficiency of polystyrene/graphene composites with magnetic Fe3O4 nanoparticles [J].
Chen, Yu ;
Wang, Yongli ;
Zhang, Hao-Bin ;
Li, Xiaofeng ;
Gui, Chen-Xi ;
Yu, Zhong-Zhen .
CARBON, 2015, 82 :67-76
[7]   Assessment of the In Vivo Toxicity of Gold Nanoparticles [J].
Chen, Yu-Shiun ;
Hung, Yao-Ching ;
Liau, Ian ;
Huang, G. Steve .
NANOSCALE RESEARCH LETTERS, 2009, 4 (08) :858-864
[8]   Functional collagen conduits combined with human mesenchymal stem cells promote regeneration after sciatic nerve transection in dogs [J].
Cui, Yi ;
Yao, Yao ;
Zhao, Yannan ;
Xiao, Zhifeng ;
Cao, Zongfu ;
Han, Sufang ;
Li, Xing ;
Huan, Yong ;
Pan, Juli ;
Dai, Jianwu .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2018, 12 (05) :1285-1296
[9]   Exploring the Role of Manganese on the Microstructure, Mechanical Properties, Biodegradability, and Biocompatibility of Porous Iron-Based Scaffolds [J].
Dargusch, Matthew S. ;
Dehghan-Manshadi, Ali ;
Shahbazi, Mahboobeh ;
Venezuela, Jeffrey ;
Xuan Tran ;
Song, Jing ;
Liu, Na ;
Xu, Chun ;
Ye, Qinsong ;
Wen, Cuie .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2019, 5 (04) :1686-1702
[10]   Magnetic nanoparticle-loaded electrospun poly(ε-caprolactone) nanofibers for drug delivery applications [J].
Demir, Didem ;
Gures, Dilek ;
Tecim, Tugba ;
Genc, Rukan ;
Bolgen, Nimet .
APPLIED NANOSCIENCE, 2018, 8 (06) :1461-1469