Pneumatic Microextrusion-Based Additive Biofabrication of Polycaprolactone Bone Scaffolds: Part II – Investigation of the Influence of Polymer Flow Parameters

Mohan Yu, Logan Lawrence, P. Claudio, James B. Day, Roozbeh Salary
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Abstract

Pneumatic micro-extrusion (PME), a direct-write additive manufacturing process, has emerged as a high-resolution method for the fabrication of a broad range of biological tissues and organs. However, the PME process is intrinsically complex, governed by complex physical phenomena. Hence, investigation of the effects of consequential parameters would be an inevitable need. The goal of this research work is to fabricate biocompatible, porous bone tissue scaffolds for the treatment of osseous fractures, defects, and eventually diseases. In pursuit of this goal, the objective of this study is to investigate the influence of material deposition factors — i.e., (i) deposition head temperature, (ii) flow pressure, and (iii) infill pattern — on the mechanical performance of PME-fabricated bone scaffolds. It was observed that the deposition head temperature as well as the flow pressure significantly affected scaffold diameter (unlike scaffold height). In addition, material deposition rate increased significantly as a result of an increase in the deposition temperature; this phenomenon stems from a reduction in Polycaprolactone (PCL) viscosity. Furthermore, there was a direct correlation between the amount of deposited mass and scaffold stiffness. Overall, the results of this study pave the way for future investigation of PME-deposited PCL scaffolds with optimal functional properties for incorporation of stem cells toward the treatment of osseous fractures and defects.
基于气动微挤压的聚己内酯骨支架添加剂生物制造:第二部分-聚合物流动参数影响的研究
气动微挤压(PME)是一种直接写入的增材制造工艺,已经成为制造各种生物组织和器官的高分辨率方法。然而,PME过程本质上是复杂的,受复杂的物理现象支配。因此,研究相应参数的影响将是不可避免的需要。这项研究工作的目标是制造生物相容性的多孔骨组织支架,用于骨骨折、骨缺损和最终疾病的治疗。为了实现这一目标,本研究的目的是研究材料沉积因素-即(i)沉积头温度,(ii)流动压力和(iii)填充模式-对pme制造骨支架力学性能的影响。观察到沉积头温度和流动压力显著影响支架直径(与支架高度不同)。此外,随着沉积温度的升高,材料沉积速率显著增加;这种现象源于聚己内酯(PCL)粘度的降低。此外,沉积质量与支架刚度之间存在直接相关性。总的来说,本研究的结果为未来研究pme沉积的PCL支架铺平了道路,该支架具有最佳的功能特性,可以将干细胞纳入骨骨折和骨缺损的治疗中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
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