A review of computational models of bone fracture healing

被引:39
作者
Wang, Monan [1 ]
Yang, Ning [1 ]
Wang, Xinyu [1 ]
机构
[1] Harbin Univ Sci & Technol, Sch Mech & Power Engn, Harbin 150080, Heilongjiang, Peoples R China
关键词
Fracture healing; Computational biology; Mechanical stimuli; Biochemical signals; ENDOTHELIAL GROWTH-FACTOR; MESENCHYMAL STEM-CELLS; REDUCED OXYGEN-TENSION; TISSUE DIFFERENTIATION; MECHANO-REGULATION; IN-VITRO; DISTRACTION OSTEOGENESIS; BIOPHYSICAL STIMULI; STROMAL CELLS; GAP SIZE;
D O I
10.1007/s11517-017-1701-3
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
In the process of fracture healing, there are many cellular and molecular events that are regulated by mechanical stimuli and biochemical signals. To explore the unknown mechanisms underlying bone fracture healing, optimal fixation configurations, and the design of new treatment strategies, computational healing models provide a good solution. With the simulation of mechanoregulatory healing models, bioregulatory healing models and coupled mechanobioregulatory healing models, healing outcomes can be predicted. In this review, first, we provide an overview of current computational healing models. Their clinical applications are also presented. Then, the limitations of current models and their corresponding solutions are discussed in this review. Finally, future potentials are presented in this review. Multiscale modeling from the intracellular level to the tissue level is essential, and more clinical applications of computational healing models are required in future research.
引用
收藏
页码:1895 / 1914
页数:20
相关论文
共 135 条
[1]   Biomechanical assessment and clinical analysis of different intramedullary nailing systems for oblique fractures [J].
Alierta, J. A. ;
Perez, M. A. ;
Seral, B. ;
Garcia-Aznar, J. M. .
COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2016, 19 (12) :1266-1277
[2]   An interface finite element model can be used to predict healing outcome of bone fractures [J].
Alierta, J. A. ;
Perez, M. A. ;
Garcia-Aznar, J. M. .
JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2014, 29 :328-338
[3]   A fuzzy logic model of fracture healing [J].
Ament, C ;
Hofer, EP .
JOURNAL OF BIOMECHANICS, 2000, 33 (08) :961-968
[4]   Simulation of fracture healing incorporating mechanoregulation of tissue differentiation and dispersal/proliferation of cells [J].
Andreykiv, A. ;
van Keulen, F. ;
Prendergast, P. J. .
BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2008, 7 (06) :443-461
[5]   Shear movement at the fracture site delays healing in a diaphyseal fracture model [J].
Augat, P ;
Burger, J ;
Schorlemmer, S ;
Henke, T ;
Peraus, M ;
Claes, L .
JOURNAL OF ORTHOPAEDIC RESEARCH, 2003, 21 (06) :1011-1017
[6]   Imaging techniques for the assessment of fracture repair [J].
Augat, P. ;
Morgan, E. F. ;
Lujan, T. J. ;
MacGillivray, T. J. ;
Cheung, W. H. .
INJURY-INTERNATIONAL JOURNAL OF THE CARE OF THE INJURED, 2014, 45 :S16-S22
[7]   Beneficial effects of moderate, early loading and adverse effects of delayed or excessive loading on bone healing [J].
Bailón-Plaza, A ;
van der Meulen, MCH .
JOURNAL OF BIOMECHANICS, 2003, 36 (08) :1069-1077
[8]   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
[9]   Growth factor regulation of fracture repair [J].
Barnes, GL ;
Kostenuik, PJ ;
Gerstenfeld, LC ;
Einhorn, TA .
JOURNAL OF BONE AND MINERAL RESEARCH, 1999, 14 (11) :1805-1815
[10]   Selection of animal models for pre-clinical strategies in evaluating the fracture healing, bone graft substitutes and bone tissue regeneration and engineering [J].
Bigham-Sadegh, Amin ;
Oryan, Ahmad .
CONNECTIVE TISSUE RESEARCH, 2015, 56 (03) :175-194