重编程
细胞生物学
细胞骨架
化学
染色质
再生医学
干细胞
细胞命运测定
间充质干细胞
整合素
纳米技术
生物
配体(生物化学)
细胞外基质
染色质重塑
细胞
生物物理学
组织工程
再生(生物学)
材料科学
超分子化学
细胞分化
细胞外
作者
Junchao Zhi,Tianrui Zhao,Wenjing Hou,Qizheng Zhang,Zhen Gao,Jiancan Yu,Kai Wu,Chenjie Xu,Xunwu Hu,Ye Zhang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-06-05
标识
DOI:10.1021/acsnano.6c04114
摘要
Engineering extracellular microenvironments to control stem cell fate remains a central challenge in regenerative medicine. Here, we develop ECM-mimetic cellular patches formed by the supramolecular assembly of laminin-derived, integrin-binding ligands. The resulting fibrillar networks exhibit well-defined molecular packing and nanoscale ligand distribution, enabling specific engagement of apical integrin β1 on mesenchymal stem cells. This controlled interface converts molecular assembly into hierarchical mechanotransduction, coordinating cytoskeletal remodeling, nuclear deformation, and chromatin reorganization to drive neuronal reprogramming without genetic or chemical induction. Mechanistic studies reveal that the interplay between ligand assembly, spatial orientation, and network stability governs integrin activation and downstream transcriptional regulation. These findings demonstrate how molecularly programmed assemblies can transform passive matrices into active, cell-instructive materials. This work establishes a framework for designing supramolecular systems that couple structural hierarchy with mechanotransductive control to direct stem cell fate and advance regenerative material strategies.
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