Quantification of fluid shear stress in bone tissue engineering scaffolds with spherical and cubical pore architectures

被引:0
|
作者
Feihu Zhao
Ted J. Vaughan
Laoise M. McNamara
机构
[1] National University of Ireland,Biomechanics Research Centre (BMEC), Biomedical Engineering, College of Engineering and Informatics
关键词
Bone tissue-engineered scaffold; Scaffold geometry ; Mechanical stimulation; Wall shear stress; Computational modelling;
D O I
暂无
中图分类号
学科分类号
摘要
Recent studies have shown that mechanical stimulation, in the form of fluid perfusion and mechanical compression, can enhance osteogenic differentiation of mesenchymal stem cells and bone cells within tissue engineering scaffolds in vitro. The precise nature of mechanical stimulation within tissue engineering scaffolds is not only dictated by the exogenously applied loading regime, but also depends on the geometric features of the scaffold, in particular architecture, pore size and porosity. However, the precise contribution of each geometric feature towards the resulting mechanical stimulation within a scaffold is difficult to characterise due to the wide range of interacting parameters. In this study, we have applied a fluid–structure interaction model to investigate the role of scaffold geometry (architecture, pore size and porosity) on pore wall shear stress (WSS) under a range of different loading scenarios: fluid perfusion, mechanical compression and a combination of perfusion and compression. It is found that scaffold geometry (spherical and cubical pores), in particular the pore size, has a significant influence on the stimulation within scaffolds. Furthermore, we observed an amplified WSS within scaffolds under a combination of fluid perfusion and mechanical compression, which exceeded that caused by individual fluid perfusion or mechanical compression approximately threefold. By conducting this comprehensive parametric variation study, an expression was generated to allow the design and optimisation of 3D TE scaffolds and inform experimental loading regimes so that a desired level of mechanical stimulation, in terms of WSS is generated within the scaffold.
引用
收藏
页码:561 / 577
页数:16
相关论文
共 50 条
  • [1] Quantification of fluid shear stress in bone tissue engineering scaffolds with spherical and cubical pore architectures
    Zhao, Feihu
    Vaughan, Ted J.
    McNamara, Laoise M.
    BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2016, 15 (03) : 561 - 577
  • [2] Biodegradable PCL scaffolds with an interconnected spherical pore network for tissue engineering
    Izquierdo, R.
    Garcia-Giralt, N.
    Rodriguez, M. T.
    Caceres, E.
    Garcia, S. J.
    Gomez Ribelles, J. L.
    Monleon, M.
    Monllau, Joan C.
    Suay, J.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2008, 85A (01) : 25 - 35
  • [3] Biodegradable composite scaffolds with an interconnected spherical network for bone tissue engineering
    Gross, KA
    Rodríguez-Lorenzo, LM
    BIOMATERIALS, 2004, 25 (20) : 4955 - 4962
  • [4] Permeability and fluid flow-induced wall shear stress in bone scaffolds with TPMS and lattice architectures: A CFD analysis
    Ali, Davar
    Ozalp, Mehmet
    Blanquer, Sebastien B. G.
    Onel, Selis
    EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2020, 79 : 376 - 385
  • [5] Wall Shear Stress Analysis and Optimization in Tissue Engineering TPMS Scaffolds
    Pires, Tiago H., V
    Dunlop, John W. C.
    Castro, Andre P. G.
    Fernandes, Paulo R.
    MATERIALS, 2022, 15 (20)
  • [6] Structural shear stress evaluation of hyperbolic scaffolds for tissue engineering applications
    Almeida, H. A.
    Bartolo, P. J.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2012, 6 : 233 - 233
  • [7] Control of pore size and structure of tissue engineering scaffolds produced by supercritical fluid processing
    Tai, Hongyun
    Mather, Melissa L.
    Howard, Daniel
    Wang, Wenxin
    White, Lisa J.
    Crowe, John A.
    Morgan, Steve P.
    Chandra, Amit
    Williams, David J.
    Howdle, Steven M.
    Shakesheff, Kevin M.
    EUROPEAN CELLS & MATERIALS, 2007, 14 : 64 - 76
  • [8] Natural origin scaffolds with in situ pore forming capability for bone tissue engineering applications
    Martins, Ana M.
    Santos, Marina I.
    Azevedo, Helena S.
    Malafaya, Patricia B.
    Reis, Rui L.
    ACTA BIOMATERIALIA, 2008, 4 (06) : 1637 - 1645
  • [9] Mechanical interaction between cells and fluid for bone tissue engineering scaffold: Modulation of the interfacial shear stress
    Blecha, L. D.
    Rakotomanana, L.
    Razafimahery, F.
    Terrier, A.
    Pioletti, D. P.
    JOURNAL OF BIOMECHANICS, 2010, 43 (05) : 933 - 937
  • [10] Electrospun scaffolds for bone tissue engineering
    Di Martino A.
    Liverani L.
    Rainer A.
    Salvatore G.
    Trombetta M.
    Denaro V.
    MUSCULOSKELETAL SURGERY, 2011, 95 (2) : 69 - 80