Construction of tissue engineered nerve grafts and their application in peripheral nerve regeneration

被引:569
作者
Gu, Xiaosong [1 ]
Ding, Fei [1 ]
Yang, Yumin [1 ]
Liu, Jie [1 ]
机构
[1] Nantong Univ, Jiangsu Key Lab Neuroregenerat, Nantong 226001, JS, Peoples R China
关键词
Tissue engineered nerve grafts; Peripheral nerve regeneration; Transection injury; Nerve gap; Neural scaffold; Support cells; Growth factors; MARROW STROMAL CELLS; MESENCHYMAL STEM-CELLS; FIBROBLAST-GROWTH-FACTOR; RAT SCIATIC-NERVE; CILIARY NEUROTROPHIC FACTOR; AUTOLOGOUS SCHWANN-CELLS; ACHYRANTHES-BIDENTATA POLYPEPTIDES; ELASTOMER COMPOSITE BIOMATERIALS; PROSPECTIVE CLINICAL-EVALUATION; MAGNETICALLY ALIGNED COLLAGEN;
D O I
10.1016/j.pneurobio.2010.11.002
中图分类号
Q189 [神经科学];
学科分类号
071006 [神经生物学];
摘要
Surgical repair of severe peripheral nerve injuries represents not only a pressing medical need, but also a great clinical challenge. Autologous nerve grafting remains a golden standard for bridging an extended gap in transected nerves. The formidable limitations related to this approach, however, have evoked the development of tissue engineered nerve grafts as a promising alternative to autologous nerve grafts. A tissue engineered nerve graft is typically constructed through a combination of a neural scaffold and a variety of cellular and molecular components. The initial and basic structure of the neural scaffold that serves to provide mechanical guidance and optimal environment for nerve regeneration was a single hollow nerve guidance conduit. Later there have been several improvements to the basic structure, especially introduction of physical fillers into the lumen of a hollow nerve guidance conduit. Up to now, a diverse array of biomaterials, either of natural or of synthetic origin, together with well-defined fabrication techniques, has been employed to prepare neural scaffolds with different structures and properties. Meanwhile different types of support cells and/or growth factors have been incorporated into the neural scaffold, producing unique biochemical effects on nerve regeneration and function restoration. This review attempts to summarize different nerve grafts used for peripheral nerve repair, to highlight various basic components of tissue engineered nerve grafts in terms of their structures, features, and nerve regeneration-promoting actions, and finally to discuss current clinical applications and future perspectives of tissue engineered nerve grafts. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:204 / 230
页数:27
相关论文
共 481 条
[1]
Human mesenchymal stem cells: from basic biology to clinical applications [J].
Abdallah, B. M. ;
Kassem, M. .
GENE THERAPY, 2008, 15 (02) :109-116
[2]
BASIC FIBROBLAST GROWTH-FACTOR RELEASED FROM SYNTHETIC GUIDANCE CHANNELS FACILITATES PERIPHERAL-NERVE REGENERATION ACROSS LONG NERVE GAPS [J].
AEBISCHER, P ;
SALESSIOTIS, AN ;
WINN, SR .
JOURNAL OF NEUROSCIENCE RESEARCH, 1989, 23 (03) :282-289
[3]
THE MORPHOLOGY OF REGENERATING PERIPHERAL-NERVES IS MODULATED BY THE SURFACE MICROGEOMETRY OF POLYMERIC GUIDANCE CHANNELS [J].
AEBISCHER, P ;
GUENARD, V ;
VALENTINI, RF .
BRAIN RESEARCH, 1990, 531 (1-2) :211-218
[4]
Microwave irradiated collagen tubes as a better matrix for peripheral nerve regeneration [J].
Ahmed, MR ;
Vairamuthu, S ;
Shafiuzama, M ;
Basha, SH ;
Jayakumar, R .
BRAIN RESEARCH, 2005, 1046 (1-2) :55-67
[5]
Nerve guide material made from fibronectin:: Assessment of in vitro properties [J].
Ahmed, Z ;
Underwood, S ;
Brown, RA .
TISSUE ENGINEERING, 2003, 9 (02) :219-231
[6]
Genetically engineered stem cell therapy for tissue regeneration [J].
Alessandri, G ;
Emanueli, C ;
Madeddu, P .
CARDIAC ENGINEERING: FROM GENES AND CELLS TO STRUCTURE AND FUNCTION, 2004, 1015 :271-284
[7]
Spider silk fibres in artificial nerve constructs promote peripheral nerve regeneration [J].
Allmeling, C. ;
Jokuszies, A. ;
Reimers, K. ;
Kall, S. ;
Choi, C. Y. ;
Brandes, G. ;
Kasper, C. ;
Scheper, T. ;
Guggenheim, M. ;
Vogt, P. M. .
CELL PROLIFERATION, 2008, 41 (03) :408-420
[8]
Functional recovery after peripheral nerve injury and implantation of a collagen guide [J].
Alluin, Olivier ;
Wittmann, Catherine ;
Marqueste, Tanguy ;
Chabas, Jean-Francois ;
Garcia, Stephane ;
Lavaut, Marie-Noelle ;
Guinard, Didier ;
Feron, Francois ;
Decherchi, Patrick .
BIOMATERIALS, 2009, 30 (03) :363-373
[9]
IFATS Collection: Human Adipose-Derived Stem Cells Seeded on a Silk Fibroin-Chitosan Scaffold Enhance Wound Repair in a Murine Soft Tissue Injury Model [J].
Altman, Andrew M. ;
Yan, Yasheng ;
Matthias, Nadine ;
Bai, Xiaowen ;
Rios, Carmen ;
Mathur, Anshu B. ;
Song, Yao-Hua ;
Alt, Eckhard U. .
STEM CELLS, 2009, 27 (01) :250-258
[10]
Silk-based biomaterials [J].
Altman, GH ;
Diaz, F ;
Jakuba, C ;
Calabro, T ;
Horan, RL ;
Chen, JS ;
Lu, H ;
Richmond, J ;
Kaplan, DL .
BIOMATERIALS, 2003, 24 (03) :401-416