Department of Chemistry, Virginia Tech, Blacksburg, VA 24061-0344, USA; Macromolecules Innovation Institute (MII), Virginia Tech, Blacksburg, VA 24061-0344, USA.
Macromolecules Innovation Institute (MII), Virginia Tech, Blacksburg, VA 24061-0344, USA; Department of Biomedical Engineering and Mechanics (BEAM), Virginia Tech, Blacksburg, VA 24061-0344, USA.
Biomaterials. 2017 Sep;140:170-188. doi: 10.1016/j.biomaterials.2017.06.005. Epub 2017 Jun 6.
This review highlights the synthesis, properties, and advanced applications of synthetic and natural polymers 3D printed using stereolithography for soft tissue engineering applications. Soft tissue scaffolds are of great interest due to the number of musculoskeletal, cardiovascular, and connective tissue injuries and replacements humans face each year. Accurately replacing or repairing these tissues is challenging due to the variation in size, shape, and strength of different types of soft tissue. With advancing processing techniques such as stereolithography, control of scaffold resolution down to the μm scale is achievable along with the ability to customize each fabricated scaffold to match the targeted replacement tissue. Matching the advanced manufacturing technique to polymer properties as well as maintaining the proper chemical, biological, and mechanical properties for tissue replacement is extremely challenging. This review discusses the design of polymers with tailored structure, architecture, and functionality for stereolithography, while maintaining chemical, biological, and mechanical properties to mimic a broad range of soft tissue types.
这篇综述强调了使用立体光刻技术打印的合成和天然聚合物的合成、性质和高级应用,用于软组织工程应用。由于每年人类面临的肌肉骨骼、心血管和结缔组织损伤和替代的数量众多,软组织支架具有很大的吸引力。由于不同类型的软组织在大小、形状和强度上存在差异,因此准确地替换或修复这些组织具有挑战性。随着立体光刻等先进加工技术的发展,能够实现支架分辨率达到μm 级的控制,并且能够将每个制造的支架定制为与目标替换组织匹配。将先进的制造技术与聚合物特性相匹配,同时保持用于组织替代的适当的化学、生物和机械性能极具挑战性。本综述讨论了用于立体光刻的具有定制结构、架构和功能的聚合物的设计,同时保持化学、生物和机械性能以模拟广泛的软组织类型。