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Oxygen generating biomaterial improves the function and efficacy of beta cells within a macroencapsulation device

机译:产生生物材料的氧气改善了麦克风封装装置内β细胞的功能和功效

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Tissue-engineered devices have the potential to significantly improve human health. A major impediment to the success of clinically scaled transplants, however, is insufficient oxygen transport, which leads to extensive cell death and dysfunction. To provide in situ supplementation of oxygen within a cellular implant, we developed a hydrolytically reactive oxygen generating material in the form of polydimethylsiloxane (PDMS) encapsulated solid calcium peroxide, termed OxySite. Herein, we demonstrate, for the first time, the successful implementation of this in situ oxygen-generating biomaterial to support elevated cellular function and efficacy of macroencapsulation devices for the treatment of type 1 diabetes. Under extreme hypoxic conditions, devices supplemented with OxySite exhibited substantially elevated beta cell and islet viability and function. Furthermore, the inclusion of OxySite within implanted macrodevices resulted in the significant improvement of graft efficacy and insulin production in a diabetic rodent model. Translating to human islets at elevated loading densities further validated the advantages of this material. This simple biomaterial-based approach for delivering a localized and controllable oxygen supply provides a broad and impactful platform for improving the therapeutic efficacy of cell-based approaches.
机译:组织工程设备具有显着改善人类健康的潜力。然而,对临床缩放移植成功的主要障碍是不足的氧气运输,这导致广泛的细胞死亡和功能障碍。为了在细胞植入物内提供氧气的原位补充,我们开发了一种以聚二甲基硅氧烷(PDMS)包封的固体氧化钙的形式的水解反应性氧产生材料,称为氧化锇。在此,我们首次证明了这种原位氧产生的生物材料以支持升高的细胞功能和宏观填充装置的疗效,用于治疗1型糖尿病。在极端的缺氧条件下,补充有氧化岩的装置显得大致升高的β细胞和胰岛活力和功能。此外,在植入的宏观编辑中将氧化钠包含在糖尿病啮齿动物模型中的接枝疗效和胰岛素产生的显着提高。在升高的装载密度下转换为人体胰岛进一步验证了该材料的优点。这种基于简单的基于生物材料的提供方法,用于提供局部和可控的氧气供应提供了一种广泛而有影响力的平台,用于提高基于细胞的方法的治疗效果。

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