自愈水凝胶
粘弹性
肽
生物物理学
细胞外基质
超分子化学
化学
应力松弛
透明质酸
成纤维细胞
材料科学
高分子化学
分子
生物化学
体外
复合材料
解剖
有机化学
蠕动
生物
医学
作者
Spencer Zhao,Chang Xue,Darcy C. Burns,Molly S. Shoichet
出处
期刊:Biomacromolecules
[American Chemical Society]
日期:2024-06-24
卷期号:25 (7): 3946-3958
标识
DOI:10.1021/acs.biomac.4c00095
摘要
Viscoelasticity plays a key role in hydrogel design. We designed a physically cross-linked hydrogel with tunable viscoelasticity, comprising supramolecular-assembled peptides coupled to hyaluronan (HA), a native extracellular matrix component. We then explored the structural and molecular mechanisms underlying the mechanical properties of a series of these HA-peptide hydrogels. By modifying the peptide sequence, we modulated both long- and short-time stress relaxation rates as a way to target viscoelasticity with limited impact on stiffness, leading to gels that relax up to 60% of stress in 10 min. Gels with the highest viscoelasticity exhibited large mesh sizes and β-sheet secondary structures. The stiffness of the gel correlated with hydrogen bonding between the peptide chains. These gels are cytocompatible: highly viscoelastic gels that mimic the native skin microenvironment promote dermal fibroblast cell spreading. Moreover, HA-peptide gels enabled cell encapsulation, as shown with primary human T cells. Overall, these physically-cross-linked hydrogels enable tunable viscoelasticity that can be used to modulate cell morphology.
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