Teramura Yuji, Iwata Hiroo
Department of Nano-Medicine Merger Education Unit, Graduate School of Engineering, Kyoto University, Kyoto 606-8507, Japan.
Biomaterials. 2009 Apr;30(12):2270-5. doi: 10.1016/j.biomaterials.2009.01.036. Epub 2009 Feb 6.
Bioartificial pancreas, microencapsulation of islets of Langerhans (islets) within devices has been studied as a safe and simple technique for islet transplantation without the need for immuno-suppressive therapy. Various types of bioartificial pancreas have been proposed and developed such as microcapsule, macrocapsule and diffusion chamber types. However, these materials comprising a bioartificial pancreas are not completely inert and may induce foreign body and inflammatory reactions. The residual materials would be a problem in human body. Here we propose an alternative method for microencapsulation of islets with a layer of living cells. We immobilized HEK293 cells (human endoderm kidney cell line) to the islet surface using amphiphilic poly(ethylene glycol)-conjugated phospholid derivative and biotin/streptavidin reaction and encapsulated islets with a cell layer by culture. No necrosis of islet cells at the center was seen after microencapsulation with a layer of living cells. Insulin secretion ability by glucose stimulation was well maintained on these cell-encapsulated islets.
生物人工胰腺,即通过在装置内对胰岛进行微囊化处理,已被作为一种无需免疫抑制治疗的安全且简单的胰岛移植技术进行研究。人们已经提出并开发了多种类型的生物人工胰腺,如微囊型、大囊型和扩散室型。然而,构成生物人工胰腺的这些材料并非完全惰性,可能会引发异物和炎症反应。残留材料在人体中会成为一个问题。在此,我们提出一种用一层活细胞对胰岛进行微囊化的替代方法。我们使用两亲性聚乙二醇共轭磷脂衍生物和生物素/链霉亲和素反应将HEK293细胞(人胚肾细胞系)固定在胰岛表面,并通过培养用细胞层包裹胰岛。在用一层活细胞进行微囊化处理后,未观察到中心部位的胰岛细胞坏死。这些细胞包裹的胰岛在葡萄糖刺激下的胰岛素分泌能力得到了良好维持。