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3D 生物打印的复杂结构,通过静电纺丝纳米纤维片的混合多层增强。

3D bioprinted complex constructs reinforced by hybrid multilayers of electrospun nanofiber sheets.

机构信息

Digital Manufacturing Process Group, Korea Institute of Industrial Technology, 113-58 Seohaean-ro, Siheung-si, Gyeonggi-do, 15014, Republic of Korea. Department of Mechanical Engineering, Hanyang University, Ansan-si, Gyeonggi-do, 15588, Republic of Korea.

出版信息

Biofabrication. 2019 Mar 28;11(2):025015. doi: 10.1088/1758-5090/ab08c2.

Abstract

Despite the usefulness of hydrogels for cell-based bioprinting, the fragility of their resulting constructs has hindered their practical applications in tissue engineering research. Here, we suggest a hybrid integration method based on cell-hydrogel bioprinting that includes alternate layering of flexible nanofiber (NF) sheets. Because the bioprinting was implemented on a nanofibrous surface, the hydrogel-based materials could be printed with enhanced shape resolution compared to printing on a bare hydrogel. Furthermore, the insertion of NF sheets was effective for alleviating the shrinkage distortion of the hydrogel construct, which is inherently generated during the crosslinking process, thereby enhancing shape fidelity throughout the three-dimensional (3D) architecture. In addition to the structural precision, the NF-embedded constructs improved the mechanical properties in terms of compressive strength, modulus, and resilience limit (up to four-fold enhancement). With structural and mechanical supports, we could 3D fabricate complex constructs, including fully opened internal channels, which provided a favorable perfusion condition for cell growth. We confirmed the enhanced bioactivity of the NF-embedded bioprinted construct via cell culture experiments with 80% enhanced proliferation compared to the monolithic one. The synergistic combination of the two flexible materials, NFs and hydrogels, is expected to have extensive applicability in soft tissue engineering.

摘要

尽管水凝胶在基于细胞的生物打印中很有用,但它们所产生的结构的脆弱性阻碍了它们在组织工程研究中的实际应用。在这里,我们提出了一种基于细胞-水凝胶生物打印的混合集成方法,包括灵活的纳米纤维 (NF) 片的交替分层。由于生物打印是在纳米纤维表面上进行的,因此与在裸水凝胶上打印相比,基于水凝胶的材料可以打印出更高的形状分辨率。此外,插入 NF 片对于缓解水凝胶结构在交联过程中固有产生的收缩变形非常有效,从而提高了整个三维 (3D) 结构的形状保真度。除了结构精度之外,NF 嵌入的结构还提高了机械性能,包括抗压强度、模量和弹性极限(提高了四倍)。通过结构和机械支撑,我们可以 3D 制造复杂的结构,包括完全开放的内部通道,为细胞生长提供了有利的灌注条件。我们通过细胞培养实验证实了 NF 嵌入的生物打印结构的增强生物活性,与整体结构相比,细胞增殖提高了 80%。两种柔性材料 NF 和水凝胶的协同组合有望在软组织工程中有广泛的适用性。

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