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细胞包封水凝胶的快速狄尔斯-阿尔德交联反应

Rapid Diels-Alder Cross-linking of Cell Encapsulating Hydrogels.

作者信息

Madl Christopher M, Heilshorn Sarah C

机构信息

Department of Bioengineering, Stanford University, Stanford, California 94305, United States.

Baxter Laboratory for Stem Cell Biology, Department of Microbiology & Immunology, Stanford University, 269 Campus Drive CCSR 4215, Stanford, California 94305, United States.

出版信息

Chem Mater. 2019 Oct 8;31(19):8035-8043. doi: 10.1021/acs.chemmater.9b02485. Epub 2019 Sep 27.

Abstract

Recent efforts in the design of hydrogel biomaterials have focused on better mimicking the native cellular microenvironment to direct cell fate. To simultaneously control multiple material parameters, several orthogonal chemistries may be needed. However, present strategies to prepare cell-encapsulating hydrogels make use of relatively few chemical reactions. To expand this chemical toolkit, we report the preparation of hydrogels based on a Diels-Alder reaction between fulvenes and maleimides with markedly improved gelation kinetics and hydrolytic stability. Fulvene-maleimide gels cross-link up to 10-times faster than other commonly used DA reaction pairs and remain stable for months under physiological conditions. Furthermore, fulvene-maleimide gels presenting relevant biochemical cues, such as cell-adhesive ligands and proteolytic degradability, support the culture of human mesenchymal stromal cells. Finally, this rapid DA reaction was combined with an orthogonal click reaction to demonstrate how the use of selective chemistries can provide new avenues to incorporate multiple functionalities in hydrogel materials.

摘要

近期水凝胶生物材料的设计工作主要集中在更好地模拟天然细胞微环境以引导细胞命运。为了同时控制多个材料参数,可能需要几种正交化学方法。然而,目前制备细胞封装水凝胶的策略所利用的化学反应相对较少。为了扩展这个化学工具包,我们报道了基于富烯与马来酰亚胺之间的狄尔斯-阿尔德反应制备水凝胶,其凝胶化动力学和水解稳定性显著提高。富烯-马来酰亚胺凝胶的交联速度比其他常用的狄尔斯-阿尔德反应对快10倍,并且在生理条件下可稳定数月。此外,呈现相关生化线索(如细胞黏附配体和蛋白水解降解性)的富烯-马来酰亚胺凝胶能够支持人间充质基质细胞的培养。最后,这种快速的狄尔斯-阿尔德反应与一种正交点击反应相结合,以展示如何利用选择性化学方法为在水凝胶材料中整合多种功能提供新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fdda/7224313/96180bb8b608/nihms-1558533-f0002.jpg

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