Poly(ε-caprolactone)/Hydroxyapatite 3D Honeycomb Scaffolds for a Cellular Microenvironment Adapted to Maxillofacial Bone Reconstruction

被引:50
作者
Garcia, Alejandro Garcia [1 ]
Hebraud, Anne [2 ]
Duval, Jean-Luc [1 ]
Wittmer, Corinne R. [2 ]
Gaut, Ludovic [3 ,4 ,5 ]
Duprez, Delphine [3 ,4 ,5 ]
Egles, Christophe [1 ]
Bedoui, Fahmi [6 ]
Schlatter, Guy [2 ]
Legallais, Cecile [1 ]
机构
[1] Univ Technol Compiegne, Sorbonne Univ, CNRS, Lab Biomech & Bioengn,UMR 7338, Rue Dr Schweitzer, F-60200 Compiegne, France
[2] Univ Strasbourg, CNRS, UMR 7515, Inst Chim & Proc Energy Environm & Sante, 25 Rue Becquerel, F-67087 Strasbourg, France
[3] Sorbonne Univ, CNRS, UMR 7622, IBPS,Dev Biol Lab, 7-9 Quai St Bernard, F-75005 Paris, France
[4] CNRS, UMR 7622, 7-9 Quai St Bernard, F-75005 Paris, France
[5] INSERM, U1156, 7-9 Quai St Bernard, F-75005 Paris, France
[6] Univ Technol Compiegne, Sorbonne Univ, Roberval Lab Mech, Rue Dr Schweitzer, F-60200 Compiegne, France
关键词
bone; electrospinning; honeycomb; cell differentiation; biomimetic; MESENCHYMAL STEM-CELLS; MARROW STROMAL CELLS; HIERARCHICAL STRUCTURE; COLLAGEN SCAFFOLDS; IN-VIVO; DIFFERENTIATION; REGENERATION; HYDROXYAPATITE; COMPOSITE; GEOMETRY;
D O I
10.1021/acsbiomaterials.8b00521
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
The elaboration of biomimetic materials inspired from the specific structure of native bone is one the main goal of tissue engineering approaches. To offer the most appropriate environment for bone reconstruction, we combined electrospinning and electrospraying to elaborate an innovative scaffold composed of alternating layers of polycaprolactone (PCL) and hydroxyapatite (HA). In our approach, the electrospun PCL was shaped into a honeycomb-like structure with an inner diameter of 160 mu m, capable of providing bone cells with a 3D environment while ensuring the material biomechanical strength. After 5 days of culture without any differentiation factor, the murine embryonic cell line demonstrated excellent cell viability on contact with the PCL-HA structures as well as active colonization of the scaffold. The cell differentiation, as tested by RT-qPCR, revealed a 6-fold increase in the expression of the RNA of the Bglap involved in bone mineralization as compared to a classical 2D culture. This differentiation of the cells into osteoblasts was confirmed by alkaline phosphatase staining of the scaffold cultivated with the cell lineage. Later on, organotypic cultures of embryonic bone tissues showed the high capacity of the PCL-HA honeycomb structure to guide the migration of differentiated bone cells throughout the cavities and the ridge of the biomaterial, with a colonization surface twice as big as that of the control. Taken together, our results indicate that PCL-HA honeycomb structures are biomimetic supports that promotes in vitro osteocompatibility, osteoconduction, and osteoinduction and could be suitable for being used for bone reconstruction in complex situations such as the repair of maxillofacial defects.
引用
收藏
页码:3317 / 3326
页数:19
相关论文
共 63 条
[1]   Osteoinduction, osteoconduction and osseointegration [J].
Albrektsson, T ;
Johansson, C .
EUROPEAN SPINE JOURNAL, 2001, 10 (Suppl 2) :S96-S101
[2]   Extracellular matrix networks in bone remodeling [J].
Alford, Andrea I. ;
Kozloff, Kenneth M. ;
Hankenson, Kurt D. .
INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 2015, 65 :20-31
[3]  
Amini Ami R., 2012, Critical Reviews in Biomedical Engineering, V40, P363
[4]   The Osteogenic and Tenogenic Differentiation Potential of C3H10T1/2 (Mesenchymal Stem Cell Model) Cultured on PCL/PLA Electrospun Scaffolds in the Absence of Specific Differentiation Medium [J].
Baudequin, Timothee ;
Gaut, Ludovic ;
Mueller, Marc ;
Huepkes, Angela ;
Glasmacher, Birgit ;
Duprez, Delphine ;
Bedoui, Fahmi ;
Legallais, Cecile .
MATERIALS, 2017, 10 (12)
[5]  
Baudequin T, 2015, TISSUE ENG PT A, V21, P1895, DOI [10.1089/ten.TEA.2014.0580, 10.1089/ten.tea.2014.0580]
[6]   Development of a novel alginate-polyvinyl alcohol-hydroxyapatite hydrogel for 3D bioprinting bone tissue engineered scaffolds [J].
Bendtsen, Stephanie T. ;
Quinnell, Sean P. ;
Wei, Mei .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2017, 105 (05) :1457-1468
[7]   Existence of a typical threshold in the response of human mesenchymal stem cells to a peak and valley topography [J].
Bigerelle, M. ;
Giljean, S. ;
Anselme, K. .
ACTA BIOMATERIALIA, 2011, 7 (09) :3302-3311
[8]   Structural and human cellular assessment of a novel microsphere-based tissue engineered scaffold for bone repair [J].
Borden, M ;
El-Amin, SF ;
Attawia, M ;
Laurencin, CT .
BIOMATERIALS, 2003, 24 (04) :597-609
[9]   Bone Biology and Physiology: Part I. The Fundamentals [J].
Buck, Donald W., II ;
Dumanian, Gregory A. .
PLASTIC AND RECONSTRUCTIVE SURGERY, 2012, 129 (06) :1314-1320
[10]   Current views on calcium phosphate osteogenicity and the translation into effective bone regeneration strategies [J].
Chai, Y. C. ;
Carlier, A. ;
Bolander, J. ;
Roberts, S. J. ;
Geris, L. ;
Schrooten, J. ;
Van Oosterwyck, H. ;
Luyten, F. P. .
ACTA BIOMATERIALIA, 2012, 8 (11) :3876-3887