Egan Paul F
Texas Tech University, 2500 Broadway, Lubbock, TX 79409, USA.
Materials (Basel). 2019 Jul 24;12(15):2355. doi: 10.3390/ma12152355.
Emerging 3D printing technologies are enabling the fabrication of complex scaffold structures for diverse medical applications. 3D printing allows controlled material placement for configuring porous tissue scaffolds with tailored properties for desired mechanical stiffness, nutrient transport, and biological growth. However, tuning tissue scaffold functionality requires navigation of a complex design space with numerous trade-offs that require multidisciplinary assessment. Integrated design approaches that encourage iteration and consideration of diverse processes including design configuration, material selection, and simulation models provide a basis for improving design performance. In this review, recent advances in design, fabrication, and assessment of 3D printed tissue scaffolds are investigated with a focus on bone tissue engineering. Bone healing and fusion are examples that demonstrate the needs of integrated design approaches in leveraging new materials and 3D printing processes for specified clinical applications. Current challenges for integrated design are outlined and emphasize directions where new research may lead to significant improvements in personalized medicine and emerging areas in healthcare.
新兴的3D打印技术能够制造用于各种医学应用的复杂支架结构。3D打印允许控制材料放置,以配置具有定制特性的多孔组织支架,以实现所需的机械刚度、营养物质传输和生物生长。然而,调整组织支架的功能需要在一个复杂的设计空间中进行权衡,这需要多学科评估。鼓励迭代并考虑包括设计配置、材料选择和模拟模型在内的各种过程的综合设计方法为提高设计性能提供了基础。在本综述中,研究了3D打印组织支架在设计、制造和评估方面的最新进展,重点是骨组织工程。骨愈合和融合的例子表明了在利用新材料和3D打印工艺用于特定临床应用时综合设计方法的必要性。概述了综合设计的当前挑战,并强调了新研究可能在个性化医疗和医疗保健新兴领域带来重大改进的方向。