Alejandro Madrid-Sánchez, Fabian Duerr, Yunfeng Nie, Hugo Thienpont, Heidi Ottevaere
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引用次数: 3
摘要
使支架适合于人体组织替代品的共同特征包括高孔隙率、微尺度特征和孔隙互连性。然而,这些特性往往是限制不同制造方法可扩展性的因素,特别是在生物打印技术中,其中分辨率低、面积小或过程缓慢阻碍了某些应用的实际使用。一个很好的例子是用于伤口敷料的生物工程支架,在这种支架中,必须制造大表面体积比的微孔——理想情况下,快速、精确和廉价,而传统的打印方法不容易同时满足这两个方面。在这项工作中,我们提出了一种替代的大桶光聚合技术来制造厘米级支架而不损失分辨率。我们首先使用激光束整形来修改3D打印体素的轮廓,从而产生我们称之为光片立体光刻(LS-SLA)的技术。为了验证概念,我们开发了一个系统,该系统使用了市购的现成组件,可以在短时间内打印出高达12.8±1.8 μm的支撑厚度,36 μm至150 μm的可调孔径,以及高达21.4 mm × 20.6 mm的支架面积。此外,制造更复杂的三维支架的潜力被证明是由六层组成的结构,每层相对于前一层旋转45°。除了演示的高分辨率和可实现的大支架尺寸外,我们发现LS-SLA在组织工程应用的应用导向技术的扩展方面具有巨大的潜力。
Fabrication of large-scale scaffolds with microscale features using light sheet stereolithography.
The common characteristics that make scaffolds suitable for human tissue substitutes include high porosity, microscale features, and pores interconnectivity. Too often, however, these characteristics are limiting factors for the scalability of different fabrication approaches, particularly in bioprinting techniques, in which either poor resolution, small areas, or slow processes hinder practical use in certain applications. An excellent example is bioengineered scaffolds for wound dressings, in which microscale pores in large surface-to-volume ratio scaffolds must be manufactured - ideally fast, precise, and cheap, and where conventional printing methods do not readily meet both ends. In this work, we propose an alternative vat photopolymerization technique to fabricate centimeter-scale scaffolds without losing resolution. We used laser beam shaping to first modify the profile of the voxels in 3D printing, resulting in a technology we refer to as light sheet stereolithography (LS-SLA). For proof of concept, we developed a system from commercially available off-the-shelf components to demonstrate strut thicknesses up to 12.8 ± 1.8 μm, tunable pore sizes ranging from 36 μm to 150 μm, and scaffold areas up to 21.4 mm × 20.6 mm printed in a short time. Furthermore, the potential to fabricate more complex and three-dimensional scaffolds was demonstrated with a structure composed of six layers, each rotated by 45° with respect to the previous. Besides the demonstrated high resolution and achievable large scaffold sizes, we found that LS-SLA has great potential for scaling-up of applied oriented technology for tissue engineering applications.
期刊介绍:
The International Journal of Bioprinting is a globally recognized publication that focuses on the advancements, scientific discoveries, and practical implementations of Bioprinting. Bioprinting, in simple terms, involves the utilization of 3D printing technology and materials that contain living cells or biological components to fabricate tissues or other biotechnological products. Our journal encompasses interdisciplinary research that spans across technology, science, and clinical applications within the expansive realm of Bioprinting.