用于明胶基微凝胶交联、硬化和退火的三重点击化学反应†。

Chun-Yi Chang, Han Nguyen, Ellen Frahm, Keith Kolaczyk and Chien-Chi Lin
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引用次数: 0

摘要

微凝胶是一种球形水凝胶,具有许多生物医学应用的理想理化特性。例如,微凝胶可用作悬浮细胞培养的单个载体,也可挤压/退火成颗粒状水凝胶,其微米级孔隙非常有利于分子运输和细胞增殖/迁移。传统上,要制造出具有不同模量、尺寸和成分的微凝胶,往往需要费力的优化过程。本研究利用明胶-降冰片烯-羧酰肼(GelNB-CH)提出了一种新的微凝胶和颗粒水凝胶制备工作流程。作为一种从明胶中提取的大分子材料,GelNB-CH 具有细胞粘附性和可降解性,同时适合三种正交点击化学反应,即硫醇-降冰片烯光点击反应、腙键和反电子需求 Diels-Alder (iEDDA) 点击反应。硫醇-降冰片烯光点击反应(使用含硫醇的交联剂)和腙键(使用含醛的交联剂)分别用于交联微凝胶和实现按需微凝胶增硬。四嗪-降冰片烯 iEDDA 点击反应(含四嗪交联剂)用于将微凝胶退火成颗粒状水凝胶。除了材料开发,我们还通过培养人类间充质干细胞和胰腺癌细胞,证明了三重点击化学颗粒水凝胶的价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Triple click chemistry for crosslinking, stiffening, and annealing of gelatin-based microgels†

Triple click chemistry for crosslinking, stiffening, and annealing of gelatin-based microgels†

Microgels are spherical hydrogels with physicochemical properties ideal for many biomedical applications. For example, microgels can be used as individual carriers for suspension cell culture or jammed/annealed into granular hydrogels with micron-scale pores highly permissive to molecular transport and cell proliferation/migration. Conventionally, laborious optimization processes are often needed to create microgels with different moduli, sizes, and compositions. This work presents a new microgel and granular hydrogel preparation workflow using gelatin-norbornene-carbohydrazide (GelNB-CH). As a gelatin-derived macromer, GelNB-CH presents cell adhesive and degradable motifs while being amenable to three orthogonal click chemistries, namely the thiol-norbornene photo-click reaction, hydrazone bonding, and the inverse electron demand Diels–Alder (iEDDA) click reaction. The thiol-norbornene photo-click reaction (with thiol-bearing crosslinkers) and hydrazone bonding (with aldehyde-bearing crosslinkers) were used to crosslink the microgels and to realize on-demand microgel stiffening, respectively. The tetrazine-norbornene iEDDA click reaction (with tetrazine-bearing crosslinkers) was used to anneal microgels into granular hydrogels. In addition to materials development, we demonstrated the value of the triple-click chemistry granular hydrogels via culturing human mesenchymal stem cells and pancreatic cancer cells.

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