生物加工
生物医学工程
材料科学
自愈水凝胶
3D打印
再生医学
明胶
3D生物打印
组织工程
脂肪组织
再生(生物学)
过程(计算)
干细胞
计算机科学
纳米技术
化学
医学
复合材料
生物
操作系统
细胞生物学
高分子化学
生物化学
遗传学
作者
Cathal O’Connell,Claudia Di Bella,Fletcher Thompson,Cheryl Augustine,Stephen Beirne,Rhys Cornock,Christopher J. Richards,Johnson Chung,Sanjeev Gambhir,Zhilian Yue,Justin Bourke,Binbin Zhang,Adam Taylor,Anita Quigley,Robert M. I. Kapsa,Peter Choong,Gordon G. Wallace
出处
期刊:Biofabrication
[IOP Publishing]
日期:2016-03-23
卷期号:8 (1): 015019-015019
被引量:252
标识
DOI:10.1088/1758-5090/8/1/015019
摘要
We present a new approach which aims to translate freeform biofabrication into the surgical field, while staying true to the practical constraints of the operating theatre. Herein we describe the development of a handheld biofabrication tool, dubbed the 'biopen', which enables the deposition of living cells and biomaterials in a manual, direct-write fashion. A gelatin–methacrylamide/hyaluronic acid–methacrylate (GelMa/HAMa) hydrogel was printed and UV crosslinked during the deposition process to generate surgically sculpted 3D structures. Custom titanium nozzles were fabricated to allow printing of multiple ink formulations in a collinear (side-by-side) geometry. Independently applied extrusion pressure for both chambers allows for geometric control of the printed structure and for the creation of compositional gradients. In vitro experiments demonstrated that human adipose stem cells maintain high viability (>97%) one week after biopen printing in GelMa/HAMa hydrogels. The biopen described in this study paves the way for the use of 3D bioprinting during the surgical process. The ability to directly control the deposition of regenerative scaffolds with or without the presence of live cells during the surgical process presents an exciting advance not only in the fields of cartilage and bone regeneration but also in other fields where tissue regeneration and replacement are critical.
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