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Micropatterning of 3D Microenvironments for Living Biosensor Applications

机译:用于活体生物传感器应用的3D微环境的微图案化

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Micro-scale printing and patterning of living cells has multiple applications including tissue engineering, cell signaling assays, and the fabrication of cell-based biosensors. In this work, a molecular printing instrument, the Bioforce Nano eNabler, was modified to enable micron-scale “quill-pen” based printing of mammalian cells in a 3D hyaluronan/gelatin based hydrogel. Specifically, photo-initiated “thiol-ene” click chemistry was used to couple the thiol groups of thiolated hyaluronan/thiolated gelatin to the alkene groups of 4-arm polyethylene glycol (PEG)-norbornene molecules. Rapid photopolymerization enabled direct printing and controlled curing of living cells within the hydrogel matrix. The resulting hydrogels were biocompatible with human adipose-derived stem cells, NIH-3T3 cells, and mouse embryonic stem cells. The utility of this printing approach was also explored for cell-based biosensors. Micro-printed cells expressing a redox sensitive variant of the green fluorescent protein (roGFP-R12) showed a measurable fluorescent response to addition of oxidizing and then reducing agents. This work represents a novel approach to micron-scale cell patterning, and its potential for living, cell-based biosensors.
机译:活细胞的微型打印和图案化具有多种应用,包括组织工程,细胞信号分析和基于细胞的生物传感器的制造。在这项工作中,对分子印刷仪器Bioforce Nano eNabler进行了改进,以实现在基于3D透明质酸/明胶的水凝胶中以微米级“羽毛笔”为基础的哺乳动物细胞的印刷。具体地,使用光引发的“硫醇-烯”点击化学将硫醇化透明质酸/硫醇化明胶的硫醇基偶联至4-臂聚乙二醇(PEG)-降冰片烯分子的烯基。快速的光聚合作用使水凝胶基质中的活细胞可以直接打印并控制固化。所得水凝胶与人类脂肪干细胞,NIH-3T3细胞和小鼠胚胎干细胞具有生物相容性。还针对基于细胞的生物传感器探索了这种印刷方法的实用性。表达绿色荧光蛋白(roGFP-R12)的氧化还原敏感变体的微印刷细胞对添加氧化剂和还原剂显示出可测量的荧光响应。这项工作代表了微米级细胞图案形成的一种新方法,及其在基于细胞的活生物传感器中的潜力。

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