自愈水凝胶
粘弹性
应力松弛
PEG比率
动态力学分析
生物物理学
延伸率
化学
材料科学
高分子化学
聚合物
蠕动
有机化学
复合材料
生物
经济
极限抗拉强度
财务
作者
Martina Janßen,Tingxian Liu,Mertcan Özel,Maaike Bril,Hari Veera Prasad Thelu,Roxanne E. Kieltyka
标识
DOI:10.1002/anie.202314738
摘要
Abstract Dynamic polymer materials are highly valued substrates for 3D cell culture due to their viscoelasticity, a time‐dependent mechanical property that can be tuned to resemble the energy dissipation of native tissues. Herein, we report the coupling of a cyclic thiosulfinate, mono‐ S ‐oxo‐4‐methyl asparagusic acid, to a 4‐arm PEG‐OH to prepare a disulfide‐based dynamic covalent hydrogel with the addition of 4‐arm PEG‐thiol. Ring opening of the cyclic thiosulfinate by nucleophilic substitution results in the rapid formation of a network showing a viscoelastic fluid‐like behaviour and relaxation rates modulated by thiol content through thiol‐disulfide exchange, whereas its viscoelastic behaviour upon application as a small molecule linear crosslinker is solid‐like. Further introduction of 4‐arm PEG‐vinylsulfone in the network yields a hydrogel with weeks‐long cell culture stability, permitting 3D culture of cell types that lack robust proliferation, such as human pluripotent stem cell‐derived cardiomyocytes (hPSC‐CMs). These cells display native behaviours such as cell elongation and spontaneous beating as a function of the hydrogel's mechanical properties. We demonstrate that the mode of dynamic cyclic thiosulfinate crosslinker presentation within the network can result in different stress relaxation profiles, opening the door to model tissues with disparate mechanics in 3D cell culture.
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