A new and evolving paradigm for biocompatibitity

被引:69
作者
Hilborn, Jons [2 ]
Bjursten, Lars M. [1 ]
机构
[1] Lund Univ, Dept Clin Sci, Malmo, Sweden
[2] Uppsala Univ, Dept Chem Mat, Uppsala, Sweden
关键词
biocompatibility; mechanical stress; interfacial mechanics; macrophage; Young's modulus; surface texture;
D O I
10.1002/term.4
中图分类号
Q813 [细胞工程];
学科分类号
摘要
We propose that the mechanical property of the interface between an implant and its surrounding tissues is critical for the host response and the performance of the device. The interfacial mechanics depends on several different factors related to the physical shape of the device and its surface as well as properties of the host tissue and the loading conditions of the device and surrounding tissue. It seems plausible that the growth of the fibrotic tissue to support mechanical loads is governed by the same priniciples as depicted by Wolfs' Law for bone. Of course, biocompatibility will have different implications depending on which vantage point we look at the host-material interface. Another implication is that only limited aspects of biocompatibility is measurable with current in vitro tests and that the elicited host response in vivo models remains crucial for evaluation of medical devices and tissue engineering constructs. Copyright (C) 2007 John Wiley & Sons, Ltd.
引用
收藏
页码:110 / 119
页数:10
相关论文
共 84 条
[1]   MORPHOLOGICAL AND PROLIFERATIVE RESPONSES OF ENDOTHELIAL-CELLS TO HYDROSTATIC-PRESSURE - ROLE OF FIBROBLAST GROWTH-FACTOR [J].
ACEVEDO, AD ;
BOWSER, SS ;
GERRITSEN, ME ;
BIZIOS, R .
JOURNAL OF CELLULAR PHYSIOLOGY, 1993, 157 (03) :603-614
[2]   OSSEOINTEGRATED TITANIUM IMPLANTS - REQUIREMENTS FOR ENSURING A LONG-LASTING, DIRECT BONE-TO-IMPLANT ANCHORAGE IN MAN [J].
ALBREKTSSON, T ;
BRANEMARK, PI ;
HANSSON, HA ;
LINDSTROM, J .
ACTA ORTHOPAEDICA SCANDINAVICA, 1981, 52 (02) :155-170
[3]  
Andrade J D, 1973, Med Instrum, V7, P110
[4]  
ARENDS MJ, 1991, INT REV EXP PATHOL, V32, P223
[5]   Cardiovascular function and basics of physiology in microgravity [J].
Aubert, AE ;
Beckers, F ;
Verheyden, B .
ACTA CARDIOLOGICA, 2005, 60 (02) :129-151
[6]   PDGF-BB, IGF-I and mechanical load stimulate DNA synthesis in avian tendon fibroblasts in vitro [J].
Banes, AJ ;
Tsuzaki, M ;
Hu, PQ ;
Brigman, B ;
Brown, T ;
Almekinders, L ;
Lawrence, WT ;
Fischer, T .
JOURNAL OF BIOMECHANICS, 1995, 28 (12) :1505-1513
[7]   Mechanism of temporal gradients in shear-induced ERK1/2 activation and proliferation in endothelial cells [J].
Bao, XP ;
Lu, CY ;
Frangos, JA .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2001, 281 (01) :H22-H29
[8]   Temporal gradient in shear but not steady shear stress induces PDGF-A and MCP-1 expression in endothelial cells -: Role of NO, NFκB, and egr-1 [J].
Bao, XP ;
Lu, CY ;
Frangos, JA .
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 1999, 19 (04) :996-1003
[9]   Temporal gradient in sheer-induced signaling pathway:: involvement of MAP kinase, c-fos, and connexin43 [J].
Bao, XP ;
Clark, CB ;
Frangos, JA .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2000, 278 (05) :H1598-H1605
[10]   HISTOLOGIC COMPARISON OF BREAST IMPLANT SHELLS WITH SMOOTH, FOAM, AND PILLAR MICROSTRUCTURING IN A RAT MODEL FROM 1 DAY TO 6 MONTHS [J].
BATRA, M ;
BERNARD, S ;
PICHA, G .
PLASTIC AND RECONSTRUCTIVE SURGERY, 1995, 95 (02) :354-363