Poly(lactide-co-glycolide)/hydroxyapatite nanofibrous scaffolds fabricated by electrospinning for bone tissue engineering

被引:0
作者
Lihong Lao
Yingjun Wang
Yang Zhu
Yuying Zhang
Changyou Gao
机构
[1] Zhejiang University,MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering
来源
Journal of Materials Science: Materials in Medicine | 2011年 / 22卷
关键词
Simulated Body Fluid; Composite Nanofibers; Composite Scaffold; Nanofibrous Scaffold; PLGA Scaffold;
D O I
暂无
中图分类号
学科分类号
摘要
Poly(lactide-co-glycolide) (PLGA) nanofibrous composite scaffolds having nano-hydroxyapatite particles (HAp) in the fibers were prepared by electrospinning of PLGA and HAp with an average diameter of 266.6 ± 7.3 nm. Microscopy and spectroscopy characterizations confirmed integration of the crystalline HAp in the scaffolds. Agglomerates gradually appeared and increased on the fiber surface along with increase of the HAp concentration. In vitro mineralization in a 5 × simulated body fluid (SBF) revealed that the PLGA/HAp nanofibrous scaffolds had a stronger biomineralization ability than the control PLGA scaffolds. Biological performance of the nanofibrous scaffolds of the control PLGA and PLGA with 5 wt% HAp (PLGA/5HAp) was assessed by in vitro culture of neonatal mouse calvaria-derived MC3T3-E1 osteoblasts. Both types of the scaffolds could support cell proliferation and showed sharp increase of viability until 7 days, but the cells cultured on the PLGA/5HAp nanofibers showed a more spreading morphology. Despite the similar level of the cell viability and cell number at each time interval, the alkaline phosphatase secretion was significantly enhanced on the PLGA/5HAp scaffolds, indicating the higher bioactivity of the as-prepared nano-HAp and the success of the present method for preparing biomimetic scaffold for bone regeneration.
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页码:1873 / 1884
页数:11
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共 230 条
  • [11] Dean DR(2002)Effect of filter deformation on the filtration and air flow for elastomeric nonwoven media Adv Filtr Sep Technol 15 525-537
  • [12] Nyalro E(1999)Transparent nanocomposites with ultrathin, electrospun nylon-4,6 fiber reinforcement Adv Mater 11 1362-1365
  • [13] Sopyan I(2002)Electrospun nanofibrous membranes for highly sensitive optical sensors Nano Lett 2 1273-1275
  • [14] Mel M(2003)Biodegradable electrospun fibers for drug delivery J Control Release 92 227-231
  • [15] Ramesh S(2007)Functional electrospun nanofibrous scaffolds for biomedical applications Adv Drug Deliver Rev 59 1392-1412
  • [16] Khalid KA(2005)Novel nanocomposites and nanoceramics based on polymer nanofibers using electrospinning process—a review J Mater Process Technol 167 283-293
  • [17] Rose FRAJ(2008)Chitosan modified poly( Colloid Surf B 66 218-225
  • [18] Oreffo ROC(2008)-lactide) microspheres as cell microcarriers for cartilage tissue engineering Colloid Surf B 67 210-215
  • [19] Burg KJL(2001)Microscale control over collagen gradient on poly( Mater Sci Eng 34 147-230
  • [20] Porter S(2009)-lactide) membrane surface for manipulating chondrocyte distribution Biomaterials 30 58-70