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Bioorthogonal Layer-by-Layer Encapsulation of Pancreatic Islets via Hyperbranched Polymers

机译:胰岛通过超支化聚合物的生物正交逐层封装

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Encapsulation of viable tissues via layer-by-layer polymer assembly provides a versatile platform for cell surface engineering, with nanoscale control over the capsule properties. Herein, we report the development of a hyperbranched polymer-based, ultrathin capsule architecture expressing bioorthogonal functionality and tailored physiochemical properties. Random carbodiimide-based condensation of 3,5-dicarboxyphenyl glycineamide on alginate yielded a highly branched polysaccharide with multiple, spatially restricted, and readily functionalizable terminal carboxylate moieties. Polyethylene glycol) (PEG) was utilized to link azido end groups to the structured alginate. Together with a phosphine-functionalized poly(amidoamine) dendrimer, nanoscale layer-by-layer coatings, covalently stabilized via Staudinger ligation, were assembled onto solid surfaces and pancreatic islets. The effects of electrostatic and/or bioorthogonal covalent interlayer interactions on the resulting coating efficiency and stability, as well as pancreatic islet viability and function, were studied. These hyperbranched polymers provide a flexible platform for the formation of covalently stabilized, ultrathin coatings on viable cells and tissues. In addition, the hyperbranched nature of the polymers presents a highly functionalized surface capable of bioorthogonal conjugation of additional bioactive or labeling motifs.
机译:通过逐层聚合物组装对活组织进行封装为细胞表面工程提供了通用平台,并且可以对胶囊特性进行纳米级控制。在本文中,我们报告了一种基于超支化聚合物的超薄胶囊体系结构的开发,该体系表达了生物正交功能和量身定制的理化特性。 3,5-二羧苯基甘氨酰胺在藻酸盐上的基于碳二亚胺的无规缩合产生高度分支的多糖,其具有多个,在空间上受限制且易于官能化的末端羧酸酯部分。聚乙二醇(PEG)用于将叠氮基端基与结构化藻酸盐连接。通过磷化氢官能化的聚(酰胺基胺)树状聚合物,将通过施陶丁格连接共价稳定的纳米级逐层涂层组装到固体表面和胰岛上。研究了静电和/或生物正交共价中间层相互作用对所得包被效率和稳定性以及胰岛生存力和功能的影响。这些超支化聚合物为在活细胞和组织上形成共价稳定的超薄涂层提供了灵活的平台。另外,聚合物的超支化性质提供了能够与其他生物活性或标记基序进行生物正交缀合的高度官能化的表面。

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