Wake Forest Institute for Regenerative Medicine, Wake Forest University School of Medicine, Winston-Salem, North Carolina 27157, USA.
Biofabrication. 2012 Mar;4(1):015005. doi: 10.1088/1758-5082/4/1/015005. Epub 2012 Feb 23.
Scaffolds play an important role in the regeneration of artificial tissues or organs. A scaffold is a porous structure with a micro-scale inner architecture in the range of several to several hundreds of micrometers. Therefore, computer-aided construction of scaffolds should provide sophisticated functionality for porous structure design and a tool path generation strategy that can achieve micro-scale architecture. In this study, a new unit cell-based computer-aided manufacturing (CAM) system was developed for the automated design and fabrication of a porous structure with micro-scale inner architecture that can be applied to composite tissue regeneration. The CAM system was developed by first defining a data structure for the computing process of a unit cell representing a single pore structure. Next, an algorithm and software were developed and applied to construct porous structures with a single or multiple pore design using solid freeform fabrication technology and a 3D tooth/spine computer-aided design model. We showed that this system is quite feasible for the design and fabrication of a scaffold for tissue engineering.
支架在人工组织或器官的再生中起着重要作用。支架是一种具有微孔结构的多孔结构,其微观结构的范围在几到几百微米之间。因此,支架的计算机辅助构建应该为多孔结构设计提供复杂的功能,以及能够实现微尺度结构的刀具路径生成策略。在这项研究中,开发了一种基于新单元的计算机辅助制造 (CAM) 系统,用于自动设计和制造具有微尺度内部结构的多孔结构,可应用于复合组织再生。CAM 系统的开发首先定义了用于表示单个孔结构的单元的计算过程的数据结构。接下来,开发了算法和软件,并应用于使用自由形状制造技术和 3D 齿/脊计算机辅助设计模型构建具有单个或多个孔设计的多孔结构。我们表明,该系统非常适用于组织工程支架的设计和制造。