化学
纳米柱
肽
非平衡态热力学
生物物理学
纳米技术
生物化学
纳米结构
热力学
材料科学
物理
生物
作者
Jiaqi Guo,Ayisha Zia,Qian‐Feng Qiu,Michael Norton,Kangqiang Qiu,Junichi Usuba,Zhiyu Liu,Meihui Yi,Shane T. Rich-New,Michael F. Hagan,Aparna Baskaran,Grace G. D. Han,Jiajie Diao,Fengbin Wang,Bing Xu
摘要
Cells contain intricate protein nanostructures, but replicating them outside of cells presents challenges. One such example is the vertical fibronectin pillars observed in embryos. Here, we demonstrate the creation of cell-free vertical fibronectin pillar mimics using nonequilibrium self-assembly. Our approach utilizes enzyme-responsive phosphopeptides that assemble into nanotubes. Enzyme action triggers shape changes in peptide assemblies, driving the vertical growth of protein nanopillars into bundles. These bundles, with peptide nanotubes serving as a template to remodel fibronectin, can then recruit collagen, which forms aggregates or bundles depending on their types. Nanopillar formation relies on enzyme-catalyzed nonequilibrium self-assembly and is governed by the concentrations of enzyme, protein, peptide, the structure of the peptide, and peptide assembly morphologies. Cryo-EM reveals unexpected nanotube thinning and packing after dephosphorylation, indicating a complex sculpting process during assembly. Our study demonstrates a cell-free method for constructing intricate, multiprotein nanostructures with directionality and composition.
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