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Design of a vascularized synthetic poly(ethylene glycol) macroencapsulation device for islet transplantation

机译:血管化合成聚(乙二醇)大型涂布装置的设计

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The use of immunoisolating macrodevices in islet transplantation confers the benefit of safety and translatability by containing transplanted cells within a single retrievable device. To date, there has been limited development and characterization of synthetic poly(ethylene glycol) (PEG)-based hydrogel macrodevices for islet encapsulation and transplantation. Herein, we describe a two-component synthetic PEG hydrogel macrodevice system, designed for islet delivery to an extrahepatic islet transplant site, consisting of a hydrogel core cross-linked with a non-degradable PEG dithiol and a vasculogenic outer layer cross-linked with a proteolytically sensitive peptide to promote degradation and enhance localized vascularization. Synthetic PEG macrodevices exhibited equivalent passive molecular transport to traditional microencapsulation materials (e.g., alginate) and long-term stability in the presence of proteases in vitro and in vivo, out to 14 weeks in rats. Encapsulated islets demonstrated high viability within the device in vitro and the incorporation of RGD adhesive peptides within the islet encapsulating PEG hydrogel improved insulin responsiveness to a glucose challenge. In vivo, the implementation of a vasculogenic, degradable hydrogel layer at the outer interface of the macrodevice enhanced vascular density within the rat omentum transplant site, resulting in improved encapsulated islet viability in a syngeneic diabetic rat model. These results highlight the benefits of the facile PEG platform to provide controlled presentation of islet-supportive ligands, as well as degradable interfaces for the promotion of engraftment and overall graft efficacy. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在胰岛移植中使用免疫孤立的宏观图赋予了通过在单个可检索装置内含有移植的细胞来赋予安全性和变化性的益处。迄今为止,已有有限的开发和表征合成聚(乙二醇)(PEG)的水凝胶Macrodeve,用于胰岛包封和移植。在此,我们描述了一种双组分合成PEG水凝胶Macrodevice系统,该宏观测系统设计用于胰岛胰岛移植部位的胰岛输送,由与不可降解的PEG二硫醇交联的水凝胶芯和与a交联的血管原性外层组成。蛋白水解敏感肽,以促进降解和增强局部血管化。合成PEG MacroDevice表现出对传统微胶囊化材料(例如,海藻酸盐)和在体外蛋白酶存在下的长期稳定性,在大鼠中为14周。包封的胰岛在体外展示了在装置内的高活力,并在包封PEG水凝胶内掺入RGD粘合剂肽改善了胰岛素对葡萄糖攻击的反应性。在体内,在大鼠膜移植部位内的血管内界面的外界面处的血管内血管型,可降解水凝胶层的实施,导致在同种式糖尿病大鼠模型中改善的包封胰岛活力。这些结果突出了便携式PEG平台的益处,以提供胰岛载体配体的控制呈现,以及用于促进植入和整体接枝效率的可降解界面。 (c)2018年elestvier有限公司保留所有权利。

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