细胞外基质
串扰
化学
形态发生
细胞粘附
生物物理学
运动性
纤维连接蛋白
细胞生物学
单体
机械生物学
粘附
细胞迁移
细胞
纤维
动力学
HT1080型
基质(化学分析)
细胞外
焦点粘着
机械转化
组织工程
自愈水凝胶
活体细胞成像
再生(生物学)
HEK 293细胞
整合素
纳米技术
作者
Yuanjing Hou,Rong Guo,Li Fang,Daiming Fan,Cheng Xu,Lian Zhu,Jun Zhang,Bing Wei,Haibo Wang
出处
期刊:Biomacromolecules
[American Chemical Society]
日期:2025-09-16
卷期号:27 (3): 1819-1830
标识
DOI:10.1021/acs.biomac.5c01404
摘要
The cooperative interplay between type I collagen (COL) and fibronectin (FN) in the extracellular matrix (ECM) guides both matrix organization and cell behavior. While COL-based materials are widely used, their limited capacity to integrate FN-mediated regulatory cues restricts functional biomimicry. Here, we investigate how COL/FN composites in distinct assembly states (monomeric vs fibrillar) differentially regulate cellular responses. Biophysical characterization confirmed FN binding to COL α chains promotes coassembly into hybrid fibrils with accelerated kinetics and enhanced mechanical rigidity. Strikingly, HT1080 cells exhibited opposing adhesion behaviors on monomeric versus fibrillar COL/FN matrices. In monomeric matrices, escalating FN ratios progressively reduced adhesion, while in fibrillar matrices, low-FN ratios enhanced adhesion synergistically. Cell migration followed an inverse pattern, with monomeric hybrids promoting motility and fibrillar matrices suppressing it. Our findings highlight that COL/FN assembly states, independent of compositional changes, dictate cell-matrix reciprocity through structural reconfiguration. This work establishes a paradigm for engineering ECM-inspired materials with phase-specific topographies to guide cellular decision-making, advancing applications in tissue regeneration and mechanobiology studies.
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