Framework for optimal design of porous scaffold microstructure by computational simulation of bone regeneration

被引:257
作者
Adachi, T
Osako, Y
Tanaka, M
Hojo, M
Hollister, SJ
机构
[1] Kyoto Univ, Grad Sch Engn, Dept Engn Sci & Mech, Sakyo, Kyoto 6068501, Japan
[2] Univ Michigan, Dept Biomed Engn, Ann Arbor, MI 48109 USA
[3] Univ Michigan, Dept Surg, Ann Arbor, MI 48109 USA
[4] Univ Michigan, Dept Mech Engn, Ann Arbor, MI 48109 USA
基金
日本科学技术振兴机构;
关键词
bone tissue engineering; porous scaffold; optinial design; cornputational biomechanics;
D O I
10.1016/j.biomaterials.2006.02.039
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In bone tissue engineering using a biodegradable scaffold, geometry of the porous scaffold microstructure is a key factor for controlling mechanical function of the bone-scaffold system in the regeneration process as well as after the regueneration. In this Study, we propose a framework for the optimal design of the porous scaffold microstructure by three-dimensional computational simulation of bone tissue regeneration that consists of scaffold degradation and new bone formation. The rate of scaffold degradation due to hydrolysis, that leads to decrease in mechanical properties.. was simply assumed to relate to the water content diffused from the surface to the bulk material. For the new bone formation on both bone and scaffold surfaces, the rate equation of trabecular surface remodeling driven by mechanical stimulation was applied. Solving these two phenomena in the same time frame, the bone regeneration process in the bone-scaffold system was predicted by computational simulation using a voxel finite element method. The change in the mechanical function of the bone-scaffold system during the regeneration process was quantitatively evaluated by measuring the change in total strain energy, and this was used for the evaluation function to optimize the scaffold microstructure that provides the desired mechanical function during and after the bone regeneration process. A case Study conducted for the scaffold with a simple microstructure demonstrated that the proposed simulation method Could be applied to the design of a porous scaffold microstructure. In addition, the regeneration process was found to be very complex even though the simple rate equations for scaffold regeneration and new bone formation were used because of the Coupling effects of these phenomena. (c) 2006 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3964 / 3972
页数:9
相关论文
共 53 条
[1]   Trabecular surface remodeling simulation for cancellous bone using microstructural voxel finite element models [J].
Adachi, T ;
Tsubota, K ;
Tomita, Y ;
Hollister, SJ .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2001, 123 (05) :403-409
[2]   Uniform stress state in bone structure with residual stress [J].
Adachi, T ;
Tanaka, M ;
Tomita, Y .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1998, 120 (03) :342-347
[3]   Simulation of trabecular surface remodeling based on local stress nonuniformity [J].
Adachi, T ;
Tomita, Y ;
Sakaue, H ;
Tanaka, M .
JSME INTERNATIONAL JOURNAL SERIES C-MECHANICAL SYSTEMS MACHINE ELEMENTS AND MANUFACTURING, 1997, 40 (04) :782-792
[4]  
ADACHI T, 2001, ASME BIOENG SNOWB UT, P545
[5]  
ADACHI T, 2002, P 4 WORLD C BIOM CAL
[6]   Functional tissue engineering: The role of biomechanics [J].
Butler, DL ;
Goldstein, SA ;
Guilak, F .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2000, 122 (06) :570-575
[7]  
Carter D, 1984, CALCIF TISSUE INT S, V36, P19
[8]   Mechanical and in vivo performance of hydroxyapatite implants with controlled architectures [J].
Chu, TMG ;
Orton, DG ;
Hollister, SJ ;
Feinberg, SE ;
Halloran, JW .
BIOMATERIALS, 2002, 23 (05) :1283-1293
[9]   TISSUE ENGINEERING BY CELL TRANSPLANTATION USING DEGRADABLE POLYMER SUBSTRATES [J].
CIMA, LG ;
VACANTI, JP ;
VACANTI, C ;
INGBER, D ;
MOONEY, D ;
LANGER, R .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1991, 113 (02) :143-151
[10]   BONE STRESS-ADAPTATION MODELS [J].
COWIN, SC .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1993, 115 (04) :528-533