Department of Nanomedicine, Houston Methodist Research Institute, Houston, TX, USA.
Department of Electronics and Telecommunications, Politecnico di Torino, Torino, Italy.
Biotechnol J. 2017 Sep;12(9). doi: 10.1002/biot.201700169. Epub 2017 Aug 23.
Transplantation of pancreatic islets or stem cell derived insulin secreting cells is an attractive treatment strategy for diabetes. However, islet transplantation is associated with several challenges including function-loss associated with dispersion and limited vascularization as well as the need for continuous immunosuppression. To overcome these limitations, here we present a novel 3D printed and functionalized encapsulation system for subcutaneous engraftment of islets or islet like cells. The devices were 3D printed with polylactic acid and the surfaces treated and patterned to increase the hydrophilicity, cell attachment, and proliferation. Surface treated encapsulation systems were implanted with growth factor enriched platelet gel, which helped to create a vascularized environment before loading human islets. The device protected the encapsulated islets from acute hypoxia and kept them functional. The adaptability of the encapsulation system was demonstrated by refilling some of the experimental groups transcutaneously with additional islets.
胰岛或干细胞衍生的胰岛素分泌细胞移植是糖尿病有吸引力的治疗策略。然而,胰岛移植存在几个挑战,包括与分散和有限的血管化相关的功能丧失,以及需要持续免疫抑制。为了克服这些限制,我们在这里提出了一种用于胰岛或胰岛样细胞皮下移植的新型 3D 打印和功能化封装系统。该设备采用聚乳酸 3D 打印,对其表面进行处理和图案化,以提高亲水性、细胞黏附性和增殖性。表面处理的封装系统中植入了富含生长因子的血小板凝胶,有助于在加载人胰岛之前创建一个血管化环境。该设备保护了封装的胰岛免受急性缺氧的影响,并保持其功能。通过经皮向一些实验组补充额外的胰岛,证明了该封装系统的适应性。