Advanced Optical Methods and Materials for Fabricating 3D Tissue Scaffolds

Xiaobo Li, Wanping Lu, Xiayi Xu, Yintao Wang, Shih-Chih Chen
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引用次数: 1

Abstract

Three-dimensional (3D) printing, also known as additive manufacturing (AM), has undergone a phase of rapid development in the fabrication of customizable and high-precision parts. Thanks to the advancements in 3D printing technologies, it is now a reality to print cells, growth factors, and various biocompatible materials altogether into arbitrarily complex 3D scaffolds with high degree of structural and functional similarities to the native tissue environment. Additionally, with overpowering advantages in molding efficiency, resolution, and a wide selection of applicable materials, optical 3D printing methods have undoubtedly become the most suitable approach for scaffold fabrication in tissue engineering (TE). In this paper, we first provide a comprehensive and up-to-date review of current optical 3D printing methods for scaffold fabrication, including traditional extrusion-based processes, selective laser sintering, stereolithography, and two-photon polymerization etc. Specifically, we review the optical design, materials, and representative applications, followed by fabrication performance comparison. Important metrics include fabrication precision, rate, materials, and application scenarios. Finally, we summarize and compare the advantages and disadvantages of each technique to guide readers in the optics and TE communities to select the most fitting printing approach under different application scenarios.
制造3D组织支架的先进光学方法和材料
三维(3D)打印,也被称为增材制造(AM),在可定制和高精度零件的制造方面经历了一个快速发展的阶段。由于3D打印技术的进步,现在可以将细胞、生长因子和各种生物相容性材料一起打印成任意复杂的3D支架,其结构和功能与天然组织环境高度相似。此外,光学3D打印方法在成型效率、分辨率和适用材料的广泛选择方面具有压倒性的优势,无疑已成为组织工程(TE)中支架制造最合适的方法。在本文中,我们首先对目前用于支架制造的光学3D打印方法进行了全面和最新的综述,包括传统的基于挤压的工艺,选择性激光烧结,立体光刻和双光子聚合等。具体来说,我们回顾了光学设计、材料和代表性应用,然后进行了制造性能比较。重要的指标包括制造精度、速率、材料和应用场景。最后,我们总结和比较了每种技术的优缺点,以指导光学和TE界的读者在不同的应用场景下选择最合适的打印方式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
10.90
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0.00%
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