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三维打印桁架支架在骨组织工程中的设计、评估和优化。

Design, evaluation, and optimization of 3D printed truss scaffolds for bone tissue engineering.

机构信息

Department of Engineering, School of Science and Technology, Nottingham Trent University, Nottingham, NG11 8NS, UK.

School of Engineering, Deakin University, Geelong, VIC, 3216, Australia.

出版信息

J Mech Behav Biomed Mater. 2021 Aug;120:104594. doi: 10.1016/j.jmbbm.2021.104594. Epub 2021 May 15.

Abstract

One of tissue engineering's main goals is to fabricate three-dimensional (3D) scaffolds with interconnected pores to reconstruct and regenerate damaged or deformed tissues and organs. In this regard, 3D printing is a promising technique for the fabrication of tissue scaffolds, which can precisely make predetermined and complicated architectures. This study aims to investigate and optimize the physical, mechanical, and biological properties of 3D truss architecture tissue scaffolds with different pore geometries. The mechanical properties of poly (methyl methacrylate) scaffolds are analysed experimentally and numerically. Furthermore, the mechanical and physical properties of scaffolds are optimized with response surface methodology (RSM), and cell adhesion of the 3D truss scaffold studies. Results demonstrate that mechanical properties of the simple and gradient scaffolds have different mechanical behaviors that are strongly correlated with pore size and their architectures, rather than merely the values of the porosity. It is also observed that the RSM technique can enable designers to enhance mechanical and physical properties of scaffolds at low cost. Moreover, the results of biological behaviour can endorse the reliability of 3D truss architecture in bone tissue engineering.

摘要

组织工程的主要目标之一是制造具有相互连通的孔的三维(3D)支架,以重建和再生受损或变形的组织和器官。在这方面,3D 打印是制造组织支架的一种很有前途的技术,它可以精确地制造预定的和复杂的结构。本研究旨在研究和优化具有不同孔几何形状的 3D 桁架结构组织支架的物理、机械和生物特性。通过实验和数值分析研究了聚甲基丙烯酸甲酯支架的机械性能。此外,使用响应面法(RSM)对支架的机械和物理性能进行了优化,并对 3D 桁架支架的细胞黏附进行了研究。结果表明,简单和梯度支架的机械性能具有不同的机械行为,这与孔径及其结构密切相关,而不仅仅是孔隙率的值。还观察到,RSM 技术可以使设计者以低成本提高支架的机械和物理性能。此外,生物行为的结果可以支持 3D 桁架结构在骨组织工程中的可靠性。

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