2 research outputs found

    Double-Phase-Functionalized Magnetic Janus Polymer Microparticles Containing TiO<sub>2</sub> and Fe<sub>2</sub>O<sub>3</sub> Nanoparticles Encapsulated in Mussel-Inspired Amphiphilic Polymers

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    Recently, anisotropic colloidal polymeric materials including Janus microparticles, which have two distinct aspects on their surfaces or interiors, have garnered much interest due to their anisotropic alignment and rotational orientation with respect to external electric or magnetic fields. Janus microparticles are also good candidates for pigments in “twisting ball type” electronic paper, which is considered promising for next-generation flexible display devices. We demonstrate here a universal strategy to encapsulate inorganic nanoparticles and to introduce different such inorganic nanoparticles into distinct polymer phases in Janus microparticles. TiO<sub>2</sub> and Fe<sub>2</sub>O<sub>3</sub> nanoparticles were separately encapsulated in two different mussel-inspired amphiphilic copolymers, and then organic–inorganic composite Janus microparticles were prepared by simple evaporation of solvent from the dispersion containing the polymer and nanoparticle. These Janus microparticles were observed to rotate quickly in response to applied magnetic fields

    Use of Membrane Potential to Achieve Transmembrane Modification with an Artificial Receptor

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    We developed a strategy to modify cell membranes with an artificial transmembrane receptor. Coulomb force on the receptor, caused by the membrane potential, was used to achieve membrane penetration. A hydrophobically modified cationic peptide was used as a membrane potential sensitive region that was connected to biotin through a transmembrane oligoethylene glycol (OEG) chain. This artificial receptor gradually disappeared from the cell membrane via penetration despite the presence of a hydrophilic OEG chain. However, when the receptor was bound to streptavidin (SA), it remained on the cell membrane because of the large and hydrophilic nature of SA
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