自愈水凝胶
细胞包封
点击化学
化学
生物结合
马来酰亚胺
环加成
呋喃
三维细胞培养
PEG比率
聚乙二醇
Diels-Alder反应
组合化学
高分子化学
细胞
有机化学
生物化学
催化作用
经济
财务
作者
Laura J. Smith,S. Maryamdokht Taimoory,Roger Y. Tam,Alexander E. G. Baker,Niema Binth Mohammad,John F. Trant,Molly S. Shoichet
出处
期刊:Biomacromolecules
[American Chemical Society]
日期:2018-02-14
卷期号:19 (3): 926-935
被引量:160
标识
DOI:10.1021/acs.biomac.7b01715
摘要
Engineered hydrogels have been extensively used to direct cell function in 3D cell culture models, which are more representative of the native cellular microenvironment than conventional 2D cell culture. Previously, hyaluronan-furan and bis-maleimide polyethylene glycol hydrogels were synthesized via Diels–Alder chemistry at acidic pH, which did not allow encapsulation of viable cells. In order to enable gelation at physiological pH, the reaction kinetics were accelerated by replacing the hyaluronan-furan with the more electron-rich hyaluronan-methylfuran. These new click-cross-linked hydrogels gel faster and at physiological pH, enabling encapsulation of viable cells, as demonstrated with 3D culture of 5 different cancer cell lines. The methylfuran accelerates Diels–Alder cycloaddition yet also increases the retro Diels–Alder reaction. Using computational analysis, we gain insight into the mechanism of the increased Diels–Alder reactivity and uncover that transition state geometry and an unexpected hydrogen-bonding interaction are important contributors to the observed rate enhancement. This cross-linking strategy serves as a platform for bioconjugation and hydrogel synthesis for use in 3D cell culture and tissue engineering.
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