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用于细胞微囊化的基于海藻酸盐的杂化水凝胶的种类扩展的合成策略。

Synthesis Strategies to Extend the Variety of Alginate-Based Hybrid Hydrogels for Cell Microencapsulation.

机构信息

Institute of Chemical Sciences and Engineering, Ecole Polytechnique Fédérale de Lausanne , EPFL SB ISIC LSPN, Station 6, CH-1015 Lausanne, Switzerland.

University Hospital of Geneva, Surgical Research Unit , CMU-1, rue Gabrielle-Perret-Gentil, CH-1211 Geneva, Switzerland.

出版信息

Biomacromolecules. 2017 Sep 11;18(9):2747-2755. doi: 10.1021/acs.biomac.7b00665. Epub 2017 Aug 8.

DOI:10.1021/acs.biomac.7b00665
PMID:28742341
Abstract

The production of hydrogel microspheres (MS) for cell immobilization, maintaining the favorable properties of alginate gels but presenting enhanced performance in terms of in vivo durability and physical properties, is desirable to extend the therapeutic potential of cell transplantation. A novel type of hydrogel MS was produced by straightforward functionalization of sodium alginate (Na-alg) with heterotelechelic poly(ethylene glycol) (PEG) derivatives equipped with either end thiol or 1,2-dithiolane moieties. Activation of the hydroxyl moieties of the alginate backbone in the form of imidazolide intermediate allowed for fast conjugation to PEG oligomers through a covalent carbamate linkage. Evaluation of the modified alginates for the preparation of MS combining fast ionic gelation ability of the alginate carboxylate groups and slow covalent cross-linking provided by the PEG-end functionalities highlighted the influence of the chemical composition of the PEG-grafting units on the physical characteristics of the MS. The mechanical properties of the MS (resistance and shape recovery) and durability of PEG-grafted alginates in physiological environment can be adjusted by varying the nature of the end functionalities and the length of the PEG chains. In vitro cell microencapsulation studies and preliminary in vivo assessment suggested the potential of these hydrogels for cell transplantation applications.

摘要

生产水凝胶微球 (MS) 用于细胞固定化,保持藻酸盐凝胶的优良性质,但在体内耐久性和物理性质方面表现出增强的性能,这对于扩展细胞移植的治疗潜力是可取的。通过将带有末端硫醇或 1,2-二硫戊环部分的杂臂聚乙二醇 (PEG) 衍生物直接功能化来制备新型水凝胶 MS。藻酸盐主链上的羟基基团被活化成咪唑啉中间体,允许通过共价氨基甲酸酯键快速与 PEG 低聚物连接。评估了改性藻酸盐用于制备 MS 的性能,结合藻酸盐羧酸盐的快速离子凝胶能力和 PEG 末端功能提供的缓慢共价交联,突出了 PEG 接枝单元的化学组成对 MS 的物理特性的影响。MS 的机械性能(阻力和形状恢复)和生理环境中 PEG 接枝藻酸盐的耐久性可以通过改变末端官能团的性质和 PEG 链的长度来调节。体外细胞微囊化研究和初步体内评估表明,这些水凝胶具有用于细胞移植应用的潜力。

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