4.7 Article

Design and properties of biomimetic irregular scaffolds for bone tissue engineering

Journal

COMPUTERS IN BIOLOGY AND MEDICINE
Volume 130, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.compbiomed.2021.104241

Keywords

Bone tissue scaffolds; Voronoi-tessellation; Gradient structure; Permeability; Finite element analysis

Funding

  1. National Natural Science Foundation of China [82072456, 81802174]
  2. Department of Science and Technology of Jilin Province, P.R.C [20200404202YY, 20200403086SF, 2020020 1453JC]
  3. Jilin Province Development and Reform Commission, P.R.C [2018C010]
  4. Department of Finance of Jilin Province [2019SCZT046, 2020SCZT037]
  5. Undergraduate teaching reform research project of Jilin University [4Z2000610852]
  6. Key training plan for outstanding young teachers of Jilin University [419080520253]
  7. Bethune plan of Jilin University [470110000692]
  8. National Key R&D Program of China [2018YFB1105100]
  9. Graduate Innovation Fund of Jilin University [101832020CX296]

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This study aimed to design an irregular biomimetic scaffold for use in bone tissue engineering applications. The scaffold was based on the Voronoi tessellation method and a new gradient method, showing good controllability and excellent permeability.
The treatment of sizeable segmental bone defects remains a challenge encountered by surgeons. In addition to bone transplantation, porous scaffolds have become a common option. Although the mechanical and biological properties of porous scaffold have recently been the subject of intense research, pore irregularity as a critical characteristic has been poorly explored. Therefore, this study aimed to design an irregular biomimetic scaffold for use in bone tissue engineering applications. The irregular scaffold was based on the Voronoi tessellation method for similarity with the primary histomorphological indexes of bone (porosity, trabecular thickness, cortical bone thickness, and surface to volume ratio). Moreover, a new gradient method was adopted, in which porosity was maintained constant, and the strut diameter was changed to generate a gradient in the irregular scaffold. The permeability and stress concentration characteristics of the irregular scaffold were compared against three conventional scaffolds (the octet, body-centered cubic, pillar body-centered cubic). The results illustrated that the microstructure of the irregular scaffold could be controlled similarly to that of the cortical/ cancellous bone unit. Simultaneously, a broad range of permeability was identified for the irregular scaffold, and gradient irregular scaffolds performed better in terms of both permeability and stress distribution than regular scaffolds. This study describes a novel method for the design of irregular scaffolds, which have good controllability and excellent permeability.

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