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基于可见光的细胞粘附明胶水凝胶立体光刻生物打印

Visible light-based stereolithography bioprinting of cell-adhesive gelatin hydrogels.

作者信息

Holzman Jonathan F, Menard Frederic

出版信息

Annu Int Conf IEEE Eng Med Biol Soc. 2017 Jul;2017:1599-1602. doi: 10.1109/EMBC.2017.8037144.

Abstract

Stereolithography-based bioprinting offers advantages in resolution and rapid printing time, and thus has received major attention in recent years. However, traditional stereolithography-based bioprinting utilizes an ultraviolet light which may cause mutagenesis and carcinogenesis of cells. In this paper, we present a new visible light crosslinkable bioink that is based on cell-adhesive gelatin. The bioink consists of Eosin Y (EY) based photoinitiator and gelatin methacrylate (GelMA) pre-polymer solution. We examined the feasibility of using visible light from a commercial beam projector to pattern the EY-GelMA bioink. We measured the absorbance of bioink to characterize its sensitivity to visible light and performed bioprinting to test its ability to promote cell adhesion. It is found that the EY-GelMA bioink has an absorption peak at roughly 522 nm, and that it can be successfully crosslinked by visible light from the commercial projector. We performed the bioprinting experiments and visualized the cell morphology using nuclei/F-actin staining. Experimental results show that most of the cells attached to the EY-GelMA bioink after five days' culturing. Ultimately, the EY-GelMA bioink can support both visible light crosslinking and cell adhesion, offering great potential in bioprinting and tissue engineering.

摘要

基于立体光刻的生物打印在分辨率和快速打印时间方面具有优势,因此近年来受到了广泛关注。然而,传统的基于立体光刻的生物打印使用紫外线,这可能会导致细胞发生突变和癌变。在本文中,我们提出了一种基于细胞粘附性明胶的新型可见光可交联生物墨水。该生物墨水由基于曙红Y(EY)的光引发剂和甲基丙烯酸明胶(GelMA)预聚物溶液组成。我们研究了使用商用光束投影仪发出的可见光对EY-GelMA生物墨水进行图案化的可行性。我们测量了生物墨水的吸光度以表征其对可见光的敏感性,并进行了生物打印以测试其促进细胞粘附的能力。结果发现,EY-GelMA生物墨水在大约522nm处有一个吸收峰,并且可以被商用投影仪发出的可见光成功交联。我们进行了生物打印实验,并使用细胞核/F-肌动蛋白染色观察了细胞形态。实验结果表明,大多数细胞在培养五天后附着在EY-GelMA生物墨水上。最终,EY-GelMA生物墨水能够支持可见光交联和细胞粘附,在生物打印和组织工程方面具有巨大潜力。

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