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Stereolithography in tissue engineering

机译:组织工程中的立体光刻

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摘要

Several recent research efforts have focused on use of computer-aided additive fabrication technologies, commonly referred to as additive manufacturing, rapid prototyping, solid freeform fabrication, or three-dimensional printing technologies, to create structures for tissue engineering. For example, scaffolds for tissue engineering may be processed using rapid prototyping technologies, which serve as matrices for cell ingrowth, vascularization, as well as transport of nutrients and waste. Stereolithography is a photopolymerization-based rapid prototyping technology that involves computer-driven and spatially controlled irradiation of liquid resin. This technology enables structures with precise microscale features to be prepared directly from a computer model. In this review, use of stereolithography for processing trimethylene carbonate, polycaprolactone, and poly(d,l-lactide) poly(pro-pylene fumarate)-based materials is considered. In addition, incorporation of bioceramic fillers for fabrication of bioceramic scaffolds is reviewed. Use of stereolithography for processing of patient-specific implantable scaffolds is also discussed. In addition, use of photopolymerization-based rapid prototyping technology, known as two-photon polymerization, for production of tissue engineering scaffolds with smaller features than conventional stereolithography technology is considered.
机译:最近的一些研究工作集中于使用计算机辅助的增材制造技术,通常称为增材制造,快速成型,固体自由形式制造或三维打印技术,以创建用于组织工程的结构。例如,用于组织工程的支架可以使用快速成型技术进行处理,该技术可以用作细胞向内生长,血管形成以及营养物质和废物运输的基质。立体光刻技术是一种基于光聚合的快速成型技术,涉及计算机驱动和空间控制的液态树脂辐射。这项技术使具有精确微尺度特征的结构可以直接从计算机模型中制备。在这篇综述中,考虑使用立体光刻技术来处理碳酸三亚甲基酯,聚己内酯和聚(d,l-丙交酯)聚(富马酸丙二醇酯)基材料。另外,综述了用于制造生物陶瓷支架的生物陶瓷填料的掺入。还讨论了使用立体光刻技术处理患者特定的可植入支架的方法。另外,考虑使用基于光聚合的快速原型技术(称为双光子聚合)来生产具有比常规立体光刻技术小的特征的组织工程支架。

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  • 来源
    《Journal of materials science 》 |2014年第3期| 845-856| 共12页
  • 作者单位

    Division of Biology, Office of Science and Engineering Laboratories, Center for Devices and Radiological Health, U.S. Food and Drug Administration, Silver Spring, MD 20993, USA,Joint Department of Biomedical Engineering, University of North Carolina - Chapel Hill and North Carolina State University, Raleigh, NC 27965, USA;

    Division of Biology, Office of Science and Engineering Laboratories, Center for Devices and Radiological Health, U.S. Food and Drug Administration, Silver Spring, MD 20993, USA;

    Joint Department of Biomedical Engineering, University of North Carolina - Chapel Hill and North Carolina State University, Raleigh, NC 27965, USA;

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