Mechano-regulation of stem cell differentiation and tissue regeneration in osteochondral defects

被引:151
作者
Kelly, DJ [1 ]
Prendergast, PJ [1 ]
机构
[1] Univ Dublin Trinity Coll, Dept Engn Mech, Ctr Bioengn, Dublin 2, Ireland
关键词
mesenchymal stem cell; osteochondral defect; mechanobiology; tissue differentiation; apoptosis;
D O I
10.1016/j.jbiomech.2004.06.026
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Cartilage defects that penetrate the subchondral bone can undergo spontaneous repair through the formation of a fibrous or cartilaginous tissue mediated primarily by mesenchymal stem cells from the bone marrow. This tissue is biomechanically inferior to normal articular cartilage, and is often observed to degrade over time. Whether or not biomechanical factors control the type and quality of the repair tissue, and its subsequent degradation, have yet to be elucidated. In this paper, we hypothesise a relationship between the mechanical environment of mesenchymal stem cells and their subsequent dispersal, proliferation, differentiation and death. The mechano-regulation stimulus is hypothesised to be a function of strain and fluid flow; these quantities are calculated using biphasic poroelastic finite element analysis. A finite element model of an osteochondral defect in the knee was created, and used to simulate the spontaneous repair process. The model predicts bone formation through both endochondral and direct intramembranous ossification in the base of the defect, cartilage formation in the centre of the defect and fibrous tissue formation superficially. Greater amounts of fibrous tissue formation are predicted as the size of the defect is increased. Large strains arc predicted within the fibrous tissue at the articular surface, resulting in significant cell apoptosis. This result leads to the conclusion that repair tissue degradation is initiated in the fibrous tissue that forms at the articular surface. The success of the mechano-regulation model in predicting many of the cellular events that occur during osteochondral defect healing suggest that in the future it could be used as a tool for optimising scaffolds for tissue engineering. (c) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1413 / 1422
页数:10
相关论文
共 31 条
[1]   QUANTITATION OF ARTICULAR SURFACE-TOPOGRAPHY AND CARTILAGE THICKNESS IN KNEE JOINTS USING STEREOPHOTOGRAMMETRY [J].
ATESHIAN, GA ;
SOSLOWSKY, LJ ;
MOW, VC .
JOURNAL OF BIOMECHANICS, 1991, 24 (08) :761-776
[2]   A mathematical framework to study the effects of growth factor influences on fracture healing [J].
Bailón-Plaza, A ;
van der Meulen, MCH .
JOURNAL OF THEORETICAL BIOLOGY, 2001, 212 (02) :191-209
[3]   THE PROLIFERATIVE AND SYNTHETIC RESPONSE OF ISOLATED CALVARIAL BONE-CELLS OF RATS TO CYCLIC BIAXIAL MECHANICAL STRAIN [J].
BRIGHTON, CT ;
STRAFFORD, B ;
GROSS, SB ;
LEATHERWOOD, DF ;
WILLIAMS, JL ;
POLLACK, SR .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1991, 73A (03) :320-331
[4]  
CARTER DR, 1988, J ORTHOPAED RES, V7, P398
[5]   Magnitudes of local stress and strain along bony surfaces predict the course and type of fracture healing [J].
Claes, LE ;
Heigele, CA .
JOURNAL OF BIOMECHANICS, 1999, 32 (03) :255-266
[6]  
CONVERY FR, 1972, CLIN ORTHOP RELAT R, P253
[7]  
DEPALMA AF, 1966, CLIN ORTHOP RELAT R, V48, P230
[8]   Primary human osteoblast proliferation and prostaglandin E2 release in response to mechanical strain in vitro [J].
Fermor, B ;
Gundle, R ;
Evans, M ;
Emerton, M ;
Pocock, A ;
Murray, D .
BONE, 1998, 22 (06) :637-643
[9]  
GARCIA JM, 2002, P 13 C EUR SOC BIOM, P394
[10]  
GOMEZ MJ, 2004, P 6 INT C COMP METH