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Oxygen Supply by Photosynthesis to an Implantable Islet Cell Device

机译:通过光合作用向植入式胰岛细胞装置供氧

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Transplantation of islet cells is an effective treatment for type 1 diabetes with critically labile metabolic control. However, during islet isolation, blood supply is disrupted, and the transport of nutrients/metabolites to and from the islet cells occurs entirely by diffusion. Adequate oxygen supply is essential for function/survival of islet cells and is the limiting factor for graft integrity. Recently, we developed an immunoisolated chamber system for transplantation of human islets without immunosuppression. This system depended on daily oxygen supply. To provide independence from this external source, we incorporated a novel approach based on photosynthetically-generated oxygen. The chamber system was packed sandwich-like with a slab of immobilized photosynthetically active microorganisms (Synechococcus lividus) on top of a flat light source (LEDs, red light at 660nm, intensity of 8E/m(2)/s). Islet cells immobilized in an alginate slab (500-1000 islet equivalents/cm(2)) were mounted on the photosynthetic slab separated by a gas permeable silicone rubber-Teflon membrane, and the complete module was sealed with a microporous polytetrafluorethylene (Teflon) membrane (pore size: 0.4m) to protect the contents from the host immune cells. Upon illumination, oxygen produced by photosynthesis diffused via the silicone Teflon membrane into the islet compartment. Oxygen production from implanted encapsulated microorganisms was stable for 1 month. After implantation of the device into diabetic rats, normoglycemia was achieved for 1 week. Upon retrieval of the device, blood glucose levels returned to the diabetic state. Our results demonstrate that an implanted photosynthetic bioreactor can supply oxygen to transplanted islets and thus maintain islet viability/functionality.
机译:胰岛细胞移植是对1型糖尿病具有严重不稳定代谢控制的有效治疗方法。但是,在胰岛隔离过程中,血液供应中断,营养物质/代谢物往返于胰岛细胞的运输完全通过扩散来实现。充足的氧气供应对胰岛细胞的功能/存活至关重要,并且是移植物完整性的限制因素。最近,我们开发了一种无需人为免疫即可移植人胰岛的免疫隔离腔室系统。该系统取决于每日的氧气供应。为了提供不受外界影响的独立性,我们采用了一种基于光合作用产生的氧气的新颖方法。腔室系统在平面光源(LED,660nm的红光,强度为8E / m(2)/ s)的顶部上用固定化的光合活性微生物(Synechococcus lividus)平板包装成三明治状。将固定在藻酸盐平板中的胰岛细胞(500-1000胰岛当量/ cm(2))安装在光合平板上,该平板由透气的硅橡胶-特氟龙膜隔开,并用微孔聚四氟乙烯(特氟龙)膜密封整个模块(孔径:0.4m)以保护内容物免受宿主免疫细胞的侵害。光照后,光合作用产生的氧气通过聚四氟乙烯硅胶膜扩散到胰岛隔室中。植入的封装微生物产生的氧气稳定1个月。将设备植入糖尿病大鼠后,正常血糖达到1周。取回设备后,血糖水平恢复为糖尿病状态。我们的结果表明,植入的光合作用生物反应器可以为移植的胰岛提供氧气,从而保持胰岛的生存能力/功能。

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