纳米技术
介孔材料
材料科学
纳米尺度
模块化设计
化学
结晶
可控性
蛋白质结晶
晶体生长
介孔二氧化硅
亚稳态
计算机科学
生物分子
纳米结构
合成生物学
脚手架
纳米颗粒
生物物理学
作者
Hongru Yang,Dian‐Zhao Lin,Zhe Li,Zhe Li,Yuqing Yan,Zuo-Han Zhao,Byeongdu Lee,Chang Woo Song,Shunzhi Wang,Jiaxi Lu,Y.G. Wang,Yongzhi Sun,Ken Livi,David Baker,Dingchang Lin,Dingchang Lin,Dingchang Lin
标识
DOI:10.1038/s41565-026-02198-x
摘要
Protein crystals are naturally derived mesoporous materials with versatile structures and physicochemical properties. Here we introduce an intracellular synthesis platform that enables controllable and programmable protein crystallization. In live cells, we show that, after initial nucleation, steady protein expression governs crystal growth, yielding predictable, tunable dynamics in live cells. Exploiting this feature, we combined HaloTag and click chemistries to achieve modular, programmable immobilization of diverse guest materials with spatial patterning down to ~100 nm resolution. We further demonstrated the sequential release of immobilized materials in physiologically relevant fluids. As a proof of concept, we programmed particles to carry human fibroblast growth factors in distinct layers, which elicited designed oscillatory Akt signalling patterns in cell culture. This work outlines a programmable method for producing mesoporous materials, with possible applications in catalysis and biomedicine. Programmed synthesis of porous protein crystals enables the immobilization and patterning of diverse materials and molecules with nanoscale spatial precision and allows the controlled, sequential release of biomolecules that guide cell signalling.
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