Evaluation of a biomimetic poly(ε-caprolactone)/β-tricalcium phosphate multispiral scaffold for bone tissue engineering: In vitro and in vivo studies

被引:48
作者
Baykan, Esra [1 ]
Koc, Aysel
Elcin, Ayse Eser
Elcin, Yasar Murat
机构
[1] Ankara Univ, Fac Sci, Tissue Engn Biomat & Nanobiotechnol Lab, TR-06100 Ankara, Turkey
关键词
OSTEOGENIC DIFFERENTIATION; NANOFIBROUS SCAFFOLDS; TRICALCIUM PHOSPHATE; COMPOSITE SCAFFOLDS; STEM-CELLS; POLYCAPROLACTONE; OSTEOINDUCTION;
D O I
10.1116/1.4870781
中图分类号
Q6 [生物物理学];
学科分类号
071011 [生物物理学];
摘要
In this study, the osteogenic potential of rat bone marrow mesenchymal stem cells (rBM-MSCs) on a biomimetic poly(epsilon-caprolactone)/beta-tricalcium phosphate (PCL/beta-TCP) composite scaffold composed of parallel concentric fibrous membranes was evaluated in vitro and in vivo. PCL/beta-TCP composite membranes were prepared by electrospinning and characterized by x-ray diffraction, differential scanning calorimetry, Fourier transform-infrared spectroscopy, and scanning electron microscopy (SEM). rBM-MSCs were seeded on three-dimensional multispiral scaffolds prepared by the assembly of composite membranes. The cell-scaffold constructs were cultured in osteogenic medium for 4 weeks. Histochemical studies and biochemical assays confirmed the osteogenic differentiation of rBM-MSCs inside the scaffold by documenting the dense mineralized extracellular matrix formation starting from the second week of culture. In the in vivo part of the study, cell-scaffold constructs precultured for 7 days were implanted subcutaneously into the epigastric groin fascia of Wistar rats for a duration of 6 months. Ectopic bone-tissue like formation was documented by using computerized tomography, confocal laser microscopy, SEM, and histochemistry. In vivo findings indicated that the biomimetic multispiral scaffold seeded with rBM-MSCs supports the ectopic formation of new bone tissue in Wistar rats. (C) 2014 American Vacuum Society.
引用
收藏
页数:11
相关论文
共 43 条
[1]
Electrospun poly(ε-caprolactone)-based composites using synthesized β-tricalcium phosphate [J].
Bianco, Alessandra ;
Di Federico, Erica ;
Cacciotti, Ilaria .
POLYMERS FOR ADVANCED TECHNOLOGIES, 2011, 22 (12) :1832-1841
[2]
Finite Element Method (FEM), Mechanobiology and Biomimetic Scaffolds in Bone Tissue Engineering [J].
Boccaccio, A. ;
Ballini, A. ;
Pappalettere, C. ;
Tullo, D. ;
Cantore, S. ;
Desiate, A. .
INTERNATIONAL JOURNAL OF BIOLOGICAL SCIENCES, 2011, 7 (01) :112-132
[3]
Design and Fabrication of Tubular Scaffolds via Direct Writing in a Melt Electrospinning Mode [J].
Brown, Toby D. ;
Slotosch, Anna ;
Thibaudeau, Laure ;
Taubenberger, Anna ;
Loessner, Daniela ;
Vaquette, Cedryck ;
Dalton, Paul D. ;
Hutmacher, Dietmar W. .
BIOINTERPHASES, 2012, 7 (1-4) :1-16
[4]
Proteome Analysis of Rat Bone Marrow Mesenchymal Stem Cell Subcultures [J].
Celebi, Betuel ;
Elcin, Y. Murat .
JOURNAL OF PROTEOME RESEARCH, 2009, 8 (05) :2164-2172
[5]
Osteoinduction of hydroxyapatite/β-tricalcium phosphate bioceramics in mice with a fractured fibula [J].
Cheng, Lijia ;
Ye, Feng ;
Yang, Ruina ;
Lu, Xiaofeng ;
Shi, Yujun ;
Li, Li ;
Fan, Hongsong ;
Bu, Hong .
ACTA BIOMATERIALIA, 2010, 6 (04) :1569-1574
[6]
Demirdogen B., J BIOMED MAT RES A
[7]
Neovascularization by bFGF releasing hyaluronic acid-gelatin microspheres: in vitro and in vivo studies [J].
Demirdogen, Bermali ;
Elcin, A. Eser ;
Elcin, Y. Murat .
GROWTH FACTORS, 2010, 28 (06) :426-436
[8]
Biodegradation of chitosan-tripolyphosphate beads:: In vitro and in vivo studies [J].
Durkut, S ;
Elçin, YM ;
Elçin, AE .
ARTIFICIAL CELLS BLOOD SUBSTITUTES AND BIOTECHNOLOGY, 2006, 34 (02) :263-276
[9]
EATON RH, 1977, CLIN CHEM, V23, P2148
[10]
Elçin YM, 2004, ADV EXP MED BIOL, V553, P301