生物加工
小岛
移植
细胞包封
胰岛
组织工程
明胶
医学
生物医学工程
计算机科学
胰岛素
内科学
生物
生物化学
作者
Xiao Liu,Sarah‐Sophia D. Carter,Max Jurie Renes,Juewan Kim,Darling Rojas-Canales,Daniella Penko,Cameron Angus,Stephen Beirne,Chris Drogemuller,Zhilian Yue,Patrick Toby Coates,Gordon G. Wallace
标识
DOI:10.1002/adhm.201801181
摘要
Abstract Over the last two decades, pancreatic islet transplantations have become a promising treatment for Type I diabetes. However, although providing a consistent and sustained exogenous insulin supply, there are a number of limitations hindering the widespread application of this approach. These include the lack of sufficient vasculature and allogeneic immune attacks after transplantation, which both contribute to poor cell survival rates. Here, these issues are addressed using a biofabrication approach. An alginate/gelatin‐based bioink formulation is optimized for islet and islet‐related cell encapsulation and 3D printing. In addition, a custom‐designed coaxial printer is developed for 3D printing of multicellular islet‐containing constructs. In this work, the ability to fabricate 3D constructs with precise control over the distribution of multiple cell types is demonstrated. In addition, it is shown that the viability of pancreatic islets is well maintained after the 3D printing process. Taken together, these results represent the first step toward an improved vehicle for islet transplantation and a potential novel strategy to treat Type I diabetes.
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