材料科学
背景(考古学)
纳米技术
细菌
琼脂糖
3d打印
3D生物打印
合成生物学
自愈水凝胶
组织工程
生物膜
趋化性
化学
生物
生物医学工程
计算生物学
工程类
生物化学
受体
高分子化学
古生物学
遗传学
作者
Julia Müller,Anna C Jäkel,Jonathan J. Richter,Markus Eder,Elisabeth Falgenhauer,Friedrich C. Simmel
标识
DOI:10.1021/acsami.1c20836
摘要
Bioprinting of engineered bacteria is of great interest for applications of synthetic biology in the context of living biomaterials, but so far, only a few viable approaches are available for the printing of gels hosting live Escherichia coli bacteria. Here, we develop a gentle extrusion-based bioprinting method based on an inexpensive alginate/agarose ink mixture that enables printing of E. coli into three-dimensional hydrogel structures up to 10 mm in height. We first characterize the rheological properties of the gel ink and then study the growth of the bacteria inside printed structures. We show that the maturation of fluorescent proteins deep within the printed structures can be facilitated by the addition of a calcium peroxide-based oxygen generation system. We then utilize the bioprinter to control different types of interactions between bacteria that depend on their spatial position. We next show quorum-sensing-based chemical communication between the engineered sender and receiver bacteria placed at different positions inside the bioprinted structure and finally demonstrate the fabrication of barrier structures defined by nonmotile bacteria that can guide the movement of chemotactic bacteria inside a gel. We anticipate that a combination of 3D bioprinting and synthetic biological approaches will lead to the development of living biomaterials containing engineered bacteria as dynamic functional units.
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