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使用含有壳聚糖的纤维蛋白原水凝胶作为生物墨水同轴挤出构建细胞血管类组织。

Coaxial bioprinting of cell-laden vascular constructs using a gelatin-tyramine bioink.

机构信息

Biomedical Engineering Research Center, Asan Institute for Life Sciences, Asan Medical Center, Seoul, Republic of Korea.

Department of Dermatology, University of Ulsan College of Medicine, Asan Medical Center, Seoul, Republic of Korea.

出版信息

Biomater Sci. 2019 Nov 1;7(11):4578-4587. doi: 10.1039/c8bm00618k. Epub 2019 Aug 21.

Abstract

Herein, three-dimensional (3D) bioprinting of engineered constructs with cell-laden biomaterials was investigated for the development of 3D tissue constructs in vitro. The present article proposes a simple coaxial-nozzle-based printing method using a one-step gelling gelatin bioink containing different cell types for vascular structure generation. First, a gelatin bioink prepolymer with a tyramine functional group was synthesized. To facilitate rapid gelation, polyethylene glycol (PEG) was introduced as a spacer between gelatin and tyramine. The gelatin-PEG-tyramine (GPT) prepolymer underwent enzymatic crosslinking, which yielded a higher gelation rate of up to 4.24 ± 0.08 s. Second, one-step bioprinting of a cell-laden tubular structure was demonstrated using a coaxial type extruder and the GPT bioink with human umbilical vein endothelial cells (HUVECs) with or without human dermal fibroblasts (HDFs). The printed no-cell GPT tube was demonstrated to possess a perfusable vascular structure. The extruded tube with HUVECs-in-GPT sheath configuration resulted in an endothelial cell-lined hollow structure and was maintained for up to 8 days in vitro. Additionally, the coaxially extruded tube with HUVECs-in-core (gelatin) and HDFs-in-GPT sheath (GPT) configuration exhibited a distribution of these two cell types along the tube axis. In the current study, it was demonstrated that a radial distribution of multiple vascular cells can be simply achieved using a synthetic GPT bioink combined with a coaxial nozzle printing system, serving as a proof-of-concept for one-step generation of vascular constructs. The rapid gelling bioink prepolymer, in combination with a coaxial bioprinter nozzle mechanism, has great potential for the development of designed, printed, and organized 3D tissue architecture vascularization.

摘要

本文提出了一种简单的基于同轴喷嘴的打印方法,使用含有不同细胞类型的一步胶凝明胶生物墨水来生成血管结构。首先,合成了具有酪胺官能团的明胶生物墨水预聚物。为了促进快速胶凝,引入了聚乙二醇(PEG)作为明胶和酪胺之间的间隔物。明胶-PEG-酪胺(GPT)预聚物通过酶交联,凝胶速度高达 4.24±0.08 s。其次,使用同轴挤出机和含有人脐静脉内皮细胞(HUVECs)的 GPT 生物墨水(有或没有人真皮成纤维细胞(HDFs)),展示了一步法细胞负载管状结构的生物打印。证明无细胞 GPT 管具有可灌注的血管结构。具有 HUVECs-GPT 鞘配置的挤出管导致内皮细胞衬里的空心结构,并在体外维持长达 8 天。此外,同轴挤出管具有 HUVECs 在内核(明胶)和 HDFs 在 GPT 鞘(GPT)配置的方式,显示了这两种细胞类型沿管轴的分布。在本研究中,证明了使用合成的 GPT 生物墨水和同轴喷嘴打印系统可以简单地实现多种血管细胞的径向分布,为一步生成血管结构提供了概念验证。快速胶凝生物墨水预聚物与同轴生物打印机喷嘴机制相结合,为设计、打印和组织 3D 组织架构血管化提供了巨大潜力。

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