Lectin-Glycan-Mediated Nanoparticle Docking As A Step Toward Programmable Membrane Catalysis And Adhesion In Synthetic Protocells (Vol 14, Pg 7899, 2020)

ACS NANO(2021)

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摘要
The spontaneous assembly of nanoscale building blocks into continuous semipermeable membranes is a key requirement for the structuration of synthetic protocells. Engineering the functionality and programmability of these building units provides a step toward more complex cell-like entities with adaptive membrane properties. Inspired by the central role of protein (lectin)-carbohydrate interactions in cellular recognition and adhesion, we fabricate semipermeable polysaccharide-polymer microcapsules (polysaccharidosomnes) with intrinsic lectin-binding properties. We employ amnphiphilic polysaccharide-polymer membrane building blocks endowed with intrinsic bio-orthogonal lectin-glycan recognition sites to facilitate the reversible noncovalent docking of functionalized polymer or zeolitic nanoparticles on the polysaccharidosomes. We show that the programmed attachment of enzyme-loaded nanoparticles gives rise to a membrane-gated spatially localized cascade reaction within the protocells due to the thermoresponsiveness of the polysaccharidosome membrane, and we demonstrate that extended closely packed networks are produced via reversible lectin-mediated adhesion between the protocells. Our results provide a step toward nanoscale engineering of bioinspired cell-like materials and could have longer-term applications in synthetic virology, protobiology, and microbiosensor and microbioreactor technologies.
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关键词
polysaccharide-polymer nanoconjugates, interfacial assembly, polysaccharidosomes, glycan-lectin bio-orthogonal interactions, membrane-gated cascade reactions, higher-order reversible assembly
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