A Multidisciplinary Evaluation of Three-Dimensional Polycaprolactone Bioactive Glass Scaffolds for Bone Tissue Engineering Purposes

被引:0
|
作者
Marchiori, Gregorio [1 ]
Bellucci, Devis [2 ]
Gambardella, Alessandro [1 ]
Petretta, Mauro [3 ]
Berni, Matteo [4 ]
Boi, Marco [5 ]
Grigolo, Brunella [6 ]
Giavaresi, Gianluca [1 ]
Baldini, Nicola [5 ,7 ]
Cannillo, Valeria [2 ]
Cavallo, Carola [6 ]
机构
[1] IRCCS Ist Ortoped Rizzoli, Sci & Tecnol Chirurg, I-40136 Bologna, Italy
[2] Univ Modena & Reggio Emilia, Dept Engn Enzo Ferrari, I-41125 Modena, Italy
[3] REGENHU SA, CH-1690 Villaz St Pierre, Switzerland
[4] IRCCS Ist Ortoped Rizzoli, Lab Tecnol Med, I-40136 Bologna, Italy
[5] IRCCS Ist Ortoped Rizzoli, Sci & Tecnol Biomed & Nanobiotecnol, I-40136 Bologna, Italy
[6] IRCCS Ist Ortoped Rizzoli, Lab RAMSES, I-40136 Bologna, Italy
[7] Univ Bologna, Dept Biomed & Neuromotor Sci, I-40126 Bologna, Italy
关键词
PCL; bioactive glasses; therapeutic ions; magnesium; composite scaffolds; human bone-marrow-derived mesenchymal stem cells; tissue engineering; bone; PCL; DIFFERENTIATION; SURFACE;
D O I
10.3390/ma17102413
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In the development of bone graft substitutes, a fundamental step is the use of scaffolds with adequate composition and architecture capable of providing support in regenerative processes both on the tissue scale, where adequate resistance to mechanical stress is required, as well as at the cellular level where compliant chemical-physical and mechanical properties can promote cellular activity. In this study, based on a previous optimization study of this group, the potential of a three-dimensional construct based on polycaprolactone (PCL) and a novel biocompatible Mg- and Sr-containing glass named BGMS10 was explored. Fourier-transform infrared spectroscopy and scanning electron microscopy showed the inclusion of BGMS10 in the scaffold structure. Mesenchymal stem cells cultured on both PCL and PCL-BGMS10 showed similar tendencies in terms of osteogenic differentiation; however, no significant differences were found between the two scaffold types. This circumstance can be explained via X-ray microtomography and atomic force microscopy analyses, which correlated the spatial distribution of the BGMS10 within the bulk with the elastic properties and topography at the cell scale. In conclusion, our study highlights the importance of multidisciplinary approaches to understand the relationship between design parameters, material properties, and cellular response in polymer composites, which is crucial for the development and design of scaffolds for bone regeneration.
引用
收藏
页数:20
相关论文
共 50 条
  • [31] One-step method for the preparation of poly(methyl methacrylate) modified titanium-bioactive glass three-dimensional scaffolds for bone tissue engineering
    Han, Xiao
    Lin, Huiming
    Chen, Xiang
    Li, Xin
    Guo, Gang
    Qu, Fengyu
    IET NANOBIOTECHNOLOGY, 2016, 10 (02) : 45 - 53
  • [32] Biofabrication of three-dimensional scaffolds of polycaprolactone with eggshell powder for bone regeneration
    Biscaia, S.
    Viana, T.
    Almeida, H. A.
    Bartolo, P. J.
    HIGH VALUE MANUFACTURING: ADVANCED RESEARCH IN VIRTUAL AND RAPID PROTOTYPING, 2014, : 171 - 176
  • [33] Three-dimensional printing of tricalcium silicate/mesoporous bioactive glass cement scaffolds for bone regeneration
    Pei, Peng
    Qi, Xin
    Du, Xiaoyu
    Zhu, Min
    Zhao, Shichang
    Zhu, Yufang
    JOURNAL OF MATERIALS CHEMISTRY B, 2016, 4 (46) : 7452 - 7463
  • [34] Three-dimensional printing of strontium-containing mesoporous bioactive glass scaffolds for bone regeneration
    Zhang, Jianhua
    Zhao, Shichang
    Zhu, Yufang
    Huang, Yinjun
    Zhu, Min
    Tao, Cuilian
    Zhang, Changqing
    ACTA BIOMATERIALIA, 2014, 10 (05) : 2269 - 2281
  • [35] Projection microfabrication of three-dimensional scaffolds for tissue engineering
    Han, Li-Hsin
    Mapili, Gazell
    Chen, Shaochen
    Roy, Krishnendu
    JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2008, 130 (02): : 0210051 - 0210054
  • [36] Design and development of three-dimensional scaffolds for tissue engineering
    Liu, C.
    Xia, Z.
    Czernuszka, J. T.
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2007, 85 (A7): : 1051 - 1064
  • [37] Three-dimensional microfabrication system for scaffolds in tissue engineering
    Lee, Seung-Jae
    Kim, Byung
    Lee, Jin-Sang
    Kim, Sung-Won
    Kim, Min-Soo
    Kim, Joo Sung
    Lim, Geunbae
    Cho, Dong-Woo
    EXPERIMENTAL MECHANICS IN NANO AND BIOTECHNOLOGY, PTS 1 AND 2, 2006, 326-328 : 723 - +
  • [38] Fabrication of three-dimensional scaffolds for heterogeneous tissue engineering
    Li-Hsin Han
    Shalu Suri
    Christine E. Schmidt
    Shaochen Chen
    Biomedical Microdevices, 2010, 12 : 721 - 725
  • [39] Three-dimensional macroporous graphene scaffolds for tissue engineering
    Lalwani, Gaurav
    D'agati, Michael
    Gopalan, Anu
    Rao, Manisha
    Schneller, Jessica
    Sitharaman, Balaji
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2017, 105 (01) : 73 - 83
  • [40] Fabrication of three-dimensional scaffolds for heterogeneous tissue engineering
    Han, Li-Hsin
    Suri, Shalu
    Schmidt, Christine E.
    Chen, Shaochen
    BIOMEDICAL MICRODEVICES, 2010, 12 (04) : 721 - 725