A novel route in bone tissue engineering: Magnetic biomimetic scaffolds

被引:288
作者
Bock, N. [1 ]
Riminucci, A. [1 ]
Dionigi, C. [1 ]
Russo, A. [2 ]
Tampieri, A. [3 ]
Landi, E. [3 ]
Goranov, V. A. [4 ]
Marcacci, M. [2 ]
Dediu, V. [1 ]
机构
[1] CNR, ISMN, I-40129 Bologna, Italy
[2] Ist Ortoped Rizzoli, Lab Biomeccan, I-40136 Bologna, Italy
[3] CNR, ISTEC, I-48108 Faenza, Italy
[4] Belarussian State Med Univ, Minsk 220116, BELARUS
关键词
Scaffolds; Magnetic materials; Magnetic nanoparticles; Hydroxyapatite; Tissue engineering; IRON-OXIDE NANOPARTICLES; GROWTH-FACTOR; CELL; COMPOSITE; ANGIOGENESIS; REGENERATION; CERAMICS; DESIGN; MARROW;
D O I
10.1016/j.actbio.2009.09.017
中图分类号
R318 [生物医学工程];
学科分类号
100103 [病原生物学];
摘要
In recent years. interest in tissue engineering and its solutions has increased considerably In particular, scaffolds have become fundamental tools in bone graft substitution and are used in combination with a variety of bio-agents However, a long-standing problem in the use of these conventional scaffolds lies in the impossibility of re-loading the scaffold with the bio-agents after implantation This work introduces the magnetic scaffold as a conceptually new solution The magnetic scaffold is able, via magnetic driving, to attract and take up in vivo growth factors, stem cells or other bio-agents bound to magnetic particles The authors succeeded in developing a simple and inexpensive technique able to transform standard commercial scaffolds made of hydroxyapatite and collagen in magnetic scaffolds. This innovative process involves dip-coating of the scaffolds in aqueous ferrofluids containing Iron oxide nanoparticles coated with various biopolymers After dip-coating, the nanoparticles are integrated into the structure of the scaffolds, providing the latter with magnetization values as high as 15 emu g(-1) at 10 kOe. These values are suitable for generating magnetic gradients, enabling magnetic guiding in the vicinity and inside the scaffold. The magnetic scaffolds do not suffer from any structural damage during the process. maintaining their specific porosity and shape Moreover, they do not release magnetic particles under a constant flow of simulated body fluids over a period of 8 days Finally. preliminary studies indicate the ability of the magnetic scaffolds to support adhesion and proliferation of human bone marrow stem cells in vitro Hence, this new type of scaffold is a valuable candidate for tissue engineering applications, featuring a novel magnetic guiding option. (C) 2009 Acta Materialia Inc. Published by Elsevier Ltd All rights reserved.
引用
收藏
页码:786 / 796
页数:11
相关论文
共 44 条
[1]
AVALLONE EA, 2007, MARKS STANDARD HDB M, P7
[2]
BANK HL, 1988, IN VITRO CELL DEV B, V24, P266
[3]
Challenges in the development of magnetic particles for therapeutic applications [J].
Barry, Stephen E. .
INTERNATIONAL JOURNAL OF HYPERTHERMIA, 2008, 24 (06) :451-466
[4]
Comparative study of ferrofluids based on dextran-coated iron oxide and metal nanoparticles for contrast agents in magnetic resonance imaging [J].
Bautista, MC ;
Bomati-Miguel, O ;
Zhao, X ;
Morales, MP ;
González-Carreño, T ;
de Alejo, RP ;
Ruiz-Cabello, J ;
Veintemillas-Verdaguer, S .
NANOTECHNOLOGY, 2004, 15 (04) :S154-S159
[5]
Birsan C, 2007, J OPTOELECTRON ADV M, V9, P1821
[6]
Birsan M, 2007, J OPTOELECTRON ADV M, V9, P1829
[7]
Dexamethasone-containing PLGA superparamagnetic microparticles as carriers for the local treatment of arthritis [J].
Butoescu, Nicoleta ;
Seemayer, Christian A. ;
Foti, Michelangelo ;
Jordan, Olivier ;
Doelker, Eric .
BIOMATERIALS, 2009, 30 (09) :1772-1780
[8]
A multi-functional scaffold for tissue regeneration: The need to engineer a tissue analogue [J].
Causa, Filippo ;
Netti, Paolo A. ;
Ambrosio, Luigi .
BIOMATERIALS, 2007, 28 (34) :5093-5099
[9]
DAVIES JE, 1991, CELL MATER, V1, P3
[10]
Magnetic nanoparticles for drug delivery [J].
Dobson, J .
DRUG DEVELOPMENT RESEARCH, 2006, 67 (01) :55-60