聚合物囊泡
微尺度化学
化学
纳米技术
聚碳酸酯
化学能
纳米颗粒
双层
小泡
曲率
显微镜
膜曲率
膜
动态光散射
变形(气象学)
能量转换
劈理(地质)
生物物理学
超分子化学
人工细胞
分子动力学
脂质双层
微流控
材料科学
作者
Jiajia Tan,Guhuan Liu,Jian Cheng,Zhengyu Deng,Guoying Zhang,Dennis E. Discher,Jinming Hu,Shiyong Liu
摘要
The molecular transduction of biochemical or light inputs into mechanical responses, which underlies a wide range of essential biological functions, remains highly challenging to achieve in synthetic assemblies with programmable precision. Here, we report rigid polymersomes with stimuli-cleavable polycarbonate bilayers that undergo programmable shape transformations, including unidirectional elongation, invagination, and disassembly, in response to chemical or light triggers. These dynamic morphological and microstructural changes are monitored in situ by confocal microscopy combined with fluorescence probe analysis. Mechanistically, localized dissipation of chemical energy establishes reactive gradients across the polymersome membrane. Upon triggered cleavage of hydrophobic blocks into smaller fragments, these gradients promote transmembrane asymmetry, permeability enhancement, and curvature modulation, thereby dictating the transformation pathway. The resulting behaviors are governed by the interplay among radial diffusion of chemical fuel (H 2 O 2 ), its consumption through cleavage reactions, and the generation of surface area and curvature asymmetry across the bilayer membrane. In parallel, light input enables precise spatiotemporal control of deformation at the single-polymersome level, including directional invagination reminiscent of cellular endocytosis. By integrating light-triggered deformation with multivalent molecular recognition, we further establish a strategy for targeted nanoparticle internalization through programmable artificial endocytosis. This work provides a general framework for converting chemical and light energy into molecular cleavage events and further into real-time microscale mechanical motion, offering a versatile platform for responsive soft matter engineering and biomimetic functions.
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