Preparation and characterization of PCL-coated porous hydroxyapatite scaffolds in the presence of MWCNTs and graphene for orthopedic applications

被引:3
作者
Deliormanli, Aylin M. [1 ]
Turk, Mert [1 ]
Atmaca, Harika [2 ]
机构
[1] Manisa Celal Bayar Univ, Dept Met & Mat Engn, Fac Engn, Yunusemre, Manisa, Turkey
[2] Manisa Celal Bayar Univ, Fac Sci & Literature, Dept Biol, Yunusemre, Manisa, Turkey
关键词
Hydroxyapatite; Polycaprolactone; Graphene; MWCNTs; Tissue engineering; CARBON NANOTUBE; BIOMEDICAL APPLICATIONS; MECHANICAL-PROPERTIES; COMPOSITE; FABRICATION; COATINGS; CELLS; NANOCOMPOSITES; GROWTH; OXIDE;
D O I
10.1007/s10934-018-0644-x
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Macro-channeled porous hydroxyapatite (HA) scaffolds were fabricated by a polymer foam replication method. Composites were prepared by coating the surface of HA scaffolds with polycaprolactone (PCL) in the presence of graphene nanopowders (in the form of flakes) and multi-walled carbon nanotubes (MWCNTs) at different concentrations. Compression strength of the scaffolds was investigated as a function of additive concentration. Results revealed that the use of PCL coating increased the mechanical strength of HA scaffolds. Besides, addition of graphene or MWCNTs further improved the compression strength of the constructs when they were used at 0.25 wt% and a decrease was observed at higher graphene and MWCNT concentrations. Highest mechanical performance was obtained in composite HA scaffolds involving MWCNTs. In vitro acellular bioactivity experiments revealed that both graphene and MWCNT-incorporated HA scaffolds showed higher bioactivity in simulated body fluid compared to bare scaffolds. However, HA formation ability was more pronounced with MWCNTs compared to graphene nanoflakes where they were possibly acted as an effective nucleation sites to induce the formation of a biomimetic apatite. Additionally, scaffolds prepared in the study were found to be nontoxic to the mouse bone marrow mesenchymal stem cells.
引用
收藏
页码:247 / 259
页数:13
相关论文
共 52 条
[1]   Apatite formation on carbon nanotubes [J].
Akasaka, Tsukasa ;
Watari, Fumio ;
Sato, Yoshinori ;
Tohji, Kazuyuki .
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2006, 26 (04) :675-678
[2]   Characterization of bone marrow derived mesenchymal stem cells in suspension [J].
Akiyama, Kentaro ;
You, Yong-Ouk ;
Yamaza, Takayoshi ;
Chen, Chider ;
Tang, Liang ;
Jin, Yan ;
Chen, Xiao-Dong ;
Gronthos, Stan ;
Shi, Songtao .
STEM CELL RESEARCH & THERAPY, 2012, 3
[3]   Reasons and remedies for the agglomeration of multilayered graphene and carbon nanotubes in polymers [J].
Atif, Rasheed ;
Inam, Fawad .
BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2016, 7 :1174-1196
[4]   Plasma-sprayed carbon nanotube reinforced hydroxyapatite coatings and their interaction with human osteoblasts in vitro [J].
Balani, Kantesh ;
Anderson, Rebecca ;
Laha, Tapas ;
Andara, Melanie ;
Tercero, Jorge ;
Crumpler, Eric ;
Agarwal, Arvind .
BIOMATERIALS, 2007, 28 (04) :618-624
[5]  
Basirun W. J., 2017, CRIT REV SOLID STATE, V43, P1
[6]   Natural bioceramics: from coral to bone and beyond [J].
Ben-Nissan, B .
CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2003, 7 (4-5) :283-288
[7]   3D Scaffold with PCL Combined Biomedical Ceramic Materials for Bone Tissue Regeneration [J].
Chern, Ming-Jyh ;
Yang, Liang-Yo ;
Shen, Yung-Kang ;
Hung, Jia-Hsiang .
INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING, 2013, 14 (12) :2201-2207
[8]   Bioceramics of calcium orthophosphates [J].
Dorozhkin, Sergey V. .
BIOMATERIALS, 2010, 31 (07) :1465-1485
[9]   Graphene: A Versatile Carbon-Based Material for Bone Tissue Engineering [J].
Dubey, Nileshkumar ;
Bentini, Ricardo ;
Islam, Intekhab ;
Cao, Tong ;
Neto, Antonio Helio Castro ;
Rosa, Vinicius .
STEM CELLS INTERNATIONAL, 2015, 2015
[10]  
Elbadawi M, 2017, ADV MAT LETT, V8, P377