Considerations on surface and structural biocompatibility as prerequisite for long-term stability of neural prostheses

被引:34
作者
Stieglitz, T [1 ]
机构
[1] Fraunhofer Inst Biomed Engn, Neural Prosthet Grp, D-66386 St Ingbert, Germany
关键词
neural prostheses; biomedical microsystem; implant; polyimide; parylene; biocompatibility; surface; nanostructure;
D O I
10.1166/jnn.2004.075
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Neural prostheses are technical systems that partially substitute neural functions of the body after traumatic lesions or neurological disorders. Using biomedical microsystems, complex implants can be designed and fabricated in very small dimensions. However, miniaturization of neural prostheses for long-term implantation is very challenging. Implants not only have to be biosafe and biostable in terms of cytotoxicity and degradation, they also have to cope with the biological requirements of structural biocompatibility. In this paper, examples of biomedical microimplants for neural prostheses use are introduced. Results from basic biocompatibility investigations regarding the cytotoxicity are reported, as well as aspects of the interaction between surface structure and cell behaviour. A detailed outlook addresses possible approaches to use nanosciences to ensure long-term stability of thin technical layers within the body and create surfaces for selective and specified functional reactions at the interface between the artificial implant and the biological environment.
引用
收藏
页码:496 / 503
页数:8
相关论文
共 39 条
[1]   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
[2]   Biocompatibility of layer-by-layer self-assembled nanofilm on silicone rubber for neurons [J].
Ai, H ;
Meng, HD ;
Ichinose, I ;
Jones, SA ;
Mills, DK ;
Lvov, YM ;
Qiao, XX .
JOURNAL OF NEUROSCIENCE METHODS, 2003, 128 (1-2) :1-8
[3]   MOLECULAR BIOINTERACTIONS OF BIOMEDICAL POLYMERS WITH EXTRACELLULAR EXUDATE AND INFLAMMATORY CELLS AND THEIR EFFECTS ON THE BIOCOMPATIBILITY, IN-VIVO [J].
ALI, SAM ;
DOHERTY, PJ ;
WILLIAMS, DF .
BIOMATERIALS, 1994, 15 (10) :779-785
[4]  
ANDRADE J D, 1992, Clinical Materials, V11, P19, DOI 10.1016/0267-6605(92)90026-P
[5]   THE FIRST 500 PATIENTS WITH SACRAL ANTERIOR ROOT STIMULATOR IMPLANTS - GENERAL DESCRIPTION [J].
BRINDLEY, GS .
PARAPLEGIA, 1994, 32 (12) :795-805
[6]   Morphologic and functional evaluation of peripheral nerve fibers regenerated through polyimide sieve electrodes over long-term implantation [J].
Ceballos, D ;
Valero-Cabré, A ;
Valderrama, E ;
Schüttler, M ;
Stieglitz, T ;
Navarro, X .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 2002, 60 (04) :517-528
[7]   Deep brain stimulation of the subthalamic nucleus for Parkinson's disease: a therapy approaching evidence-based standards [J].
Deuschl, G ;
Wenzelburger, R ;
Kopper, F ;
Volkmann, J .
JOURNAL OF NEUROLOGY, 2003, 250 (Suppl 1) :43-46
[8]   DEEP BRAIN-STIMULATION - A REVIEW OF BASIC RESEARCH AND CLINICAL-STUDIES [J].
DUNCAN, GH ;
BUSHNELL, MC ;
MARCHAND, S .
PAIN, 1991, 45 (01) :49-59
[9]  
Grünewald V, 1999, RESTOR NEUROL NEUROS, V14, P189
[10]  
Gybels J, 2001, ACTA NEUROL BELG, V101, P65