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Open-source three-dimensional printing of biodegradable polymer scaffolds for tissue engineering

机译:用于组织工程的可生物降解聚合物支架的开源三维印刷

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摘要

The fabrication of scaffolds for tissue engineering requires elements of customization depending on the application and is often limited due to the flexibility of the processing technique. This investigation seeks to address this obstacle by utilizing an open-source three-dimensional printing (3DP) system that allows vast customizability and facilitates reproduction of experiments. The effects of processing parameters on printed poly(ε-caprolactone) scaffolds with uniform and gradient pore architectures have been characterized with respect to fiber and pore morphology and mechanical properties. The results demonstrate the ability to tailor the fiber diameter, pore size, and porosity through modification of pressure, printing speed, and programmed fiber spacing. A model was also used to predict the compressive mechanical properties of uniform and gradient scaffolds, and it was found that modulus and yield strength declined with increasing porosity. The use of open-source 3DP technologies for printing tissue-engineering scaffolds provides a flexible system that can be readily modified at a low cost and is supported by community documentation. In this manner, the 3DP system is more accessible to the scientific community, which further facilitates the translation of these technologies toward successful tissue-engineering strategies.
机译:用于组织工程的支架的制造需要根据应用的定制元素,并且由于加工技术的灵活性而经常受到限制。本研究旨在通过利用开源三维打印(3DP)系统来解决这一障碍,该系统允许巨大的定制性,并有助于进行实验的再现。相对于纤维和孔形态和机械性能,表征了处理参数对印刷聚(ε-己内酯)支架的影响。结果证明了通过改变压力,印刷速度和编程光纤间距来定制纤维直径,孔径和孔隙率的能力。一种模型还用于预测均匀和梯度支架的压缩力学性能,发现模量和屈服强度随着孔隙率的增加而下降。用于打印组织工程脚手架的开源3DP技术提供了一种灵活的系统,可以以低成本容易地修改,并由社区文档支持。以这种方式,科学界更加访问3DP系统,这进一步促进了这些技术对成功的组织工程策略的翻译。

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