A Mechanobiology-based Algorithm to Optimize the Microstructure Geometry of Bone Tissue Scaffolds

被引:104
作者
Boccaccio, Antonio [1 ]
Uva, Antonio Emmanuele [1 ]
Fiorentino, Michele [1 ]
Lamberti, Luciano [1 ]
Monno, Giuseppe [1 ]
机构
[1] Politecn Bari, Dipartimento Meccan Matemat & Management, I-70126 Bari, Italy
关键词
Numerical Optimization; Mechanobiology; Scaffold Microstructure; Mechano-regulation Algorithm; MANDIBULAR DISTRACTION OSTEOGENESIS; FINITE-ELEMENT; COMPUTATIONAL ANALYSIS; ENGINEERING SCAFFOLDS; BIOMATERIAL SCAFFOLDS; CELL-DIFFERENTIATION; ARCHITECTURE DESIGN; ELASTIC PROPERTIES; REGULATION MODEL; LATENCY PERIOD;
D O I
10.7150/ijbs.13158
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Complexity of scaffold geometries and biological mechanisms involved in the bone generation process make the design of scaffolds a quite challenging task. The most common approaches utilized in bone tissue engineering require costly protocols and time-consuming experiments. In this study we present an algorithm that, combining parametric finite element models of scaffolds with numerical optimization methods and a computational mechano-regulation model, is able to predict the optimal scaffold microstructure. The scaffold geometrical parameters are perturbed until the best geometry that allows the largest amounts of bone to be generated, is reached. We study the effects of the following factors: (1) the shape of the pores; (2) their spatial distribution; (3) the number of pores per unit area. The optimal dimensions of the pores have been determined for different values of scaffold Young's modulus and compression loading acting on the scaffold upper surface. Pores with rectangular section were predicted to lead to the formation of larger amounts of bone compared to square section pores; similarly, elliptic pores were predicted to allow the generation of greater amounts of bone compared to circular pores. The number of pores per unit area appears to have rather negligible effects on the bone regeneration process. Finally, the algorithm predicts that for increasing loads, increasing values of the scaffold Young's modulus are preferable. The results shown in the article represent a proof-of-principle demonstration of the possibility to optimize the scaffold microstructure geometry based on mechanobiological criteria.
引用
收藏
页码:1 / 17
页数:17
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