Department of Biomedical Engineering, Purdue School of Engineering & Technology, Indiana University-Purdue University Indianapolis, Indianapolis, IN, 46202, USA.
Macromol Biosci. 2023 Dec;23(12):e2300213. doi: 10.1002/mabi.202300213. Epub 2023 Aug 9.
Digital light processing (DLP) bioprinting can be used to fabricate volumetric scaffolds with intricate internal structures, such as perfusable vascular channels. The successful implementation of DLP bioprinting in tissue fabrication requires using suitable photo-reactive bioinks. Norbornene-based bioinks have emerged as an attractive alternative to (meth)acrylated macromers in 3D bioprinting owing to their mild and rapid reaction kinetics, high cytocompatibility for in situ cell encapsulation, and adaptability for post-printing modification or conjugation of bioactive motifs. In this contribution, the development of gelatin-norbornene (GelNB) is reported as a photo-cross-linkable bioink for DLP 3D bioprinting. Low concentrations of GelNB (2-5 wt.%) and poly(ethylene glycol)-tetra-thiol (PEG4SH) are DLP-printed with a wide range of stiffness (G' ≈120 to 4000 Pa) and with perfusable channels. DLP-printed GelNB hydrogels are highly cytocompatible, as demonstrated by the high viability of the encapsulated human umbilical vein endothelial cells (HUVECs). The encapsulated HUVECs formed an interconnected microvascular network with lumen structures. Notably, the GelNB bioink permitted both in situ tethering and secondary conjugation of QK peptide, a vascular endothelial growth factor (VEGF)-mimetic peptide. Incorporation of QK peptide significantly improved endothelialization and vasculogenesis of the DLP-printed GelNB hydrogels, reinforcing the applicability of this bioink system in diverse biofabrication applications.
数字光处理 (DLP) 生物打印可用于制造具有复杂内部结构的体积支架,例如可灌注的血管通道。在组织制造中成功实施 DLP 生物打印需要使用合适的光反应生物墨水。与 (甲基)丙烯酰基大分子相比,降冰片烯基生物墨水由于其温和且快速的反应动力学、原位细胞包封的高细胞相容性以及对生物活性基序的后打印修饰或缀合的适应性,已成为 3D 生物打印的一种有吸引力的替代物。在本研究中,报道了明胶-降冰片烯(GelNB)作为用于 DLP 3D 生物打印的光交联生物墨水的发展。低浓度的 GelNB(2-5wt.%)和聚乙二醇-四巯基(PEG4SH)可以 DLP 打印出具有广泛刚度(G'≈120 至 4000Pa)和可灌注通道的材料。DLP 打印的 GelNB 水凝胶具有高度的细胞相容性,这可以通过包封的人脐静脉内皮细胞(HUVEC)的高活力来证明。包封的 HUVEC 形成了具有管腔结构的相互连接的微血管网络。值得注意的是,GelNB 生物墨水既允许 QK 肽的原位固定,也允许其二次缀合,QK 肽是一种血管内皮生长因子(VEGF)模拟肽。QK 肽的掺入显著改善了 DLP 打印的 GelNB 水凝胶的内皮化和血管生成,增强了该生物墨水系统在各种生物制造应用中的适用性。