Ultrathin Polydopamine Films with Phospholipid Nanodiscs Containing a Glycophorin A Domain

Cellular membranes have long served as an inspiration for nanomaterial research. The preparation of ultrathin polydopamine (PDA) films with integrated protein pores containing phospholipids and an embedded domain of a membrane protein glycophorin A as simplified cell membrane mimics is reported. Lar...

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Veröffentlicht in:Advanced functional materials 2020-05, Vol.30 (21), p.n/a
Hauptverfasser: Marchesi D'Alvise, Tommaso, Harvey, Sean, Hueske, Lisa, Szelwicka, Jolanta, Veith, Lothar, Knowles, Tuomas P. J., Kubiczek, Dennis, Flaig, Carolin, Port, Fabian, Gottschalk, Kay‐E., Rosenau, Frank, Graczykowski, Bartlomiej, Fytas, George, Ruggeri, Francesco S., Wunderlich, Katrin, Weil, Tanja
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Sprache:eng
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Zusammenfassung:Cellular membranes have long served as an inspiration for nanomaterial research. The preparation of ultrathin polydopamine (PDA) films with integrated protein pores containing phospholipids and an embedded domain of a membrane protein glycophorin A as simplified cell membrane mimics is reported. Large area, ultrathin PDA films are obtained by electropolymerization on gold surfaces with 10–18 nm thickness and dimensions of up to 2.5 cm2. The films are transferred from gold to various other substrates such as nylon mesh, silicon, or substrates containing holes in the micrometer range, and they remain intact even after transfer. The novel transfer technique gives access to freestanding PDA films that remain stable even at the air interfaces with elastic moduli of ≈6–12 GPa, which are higher than any other PDA films reported before. As the PDA film thickness is within the range of cellular membranes, monodisperse protein nanopores, so‐called “nanodiscs,” are integrated as functional entities. These nanodisc‐containing PDA films can serve as semi‐permeable films, in which the embedded pores control material transport. In the future, these simplified cell membrane mimics may offer structural investigations of the embedded membrane proteins to receive an improved understanding of protein‐mediated transport processes in cellular membranes. Electropolymerization of large area, ultrathin polydopamine films with dimensions up to 2.5 cm2 and their transfer to various substrates is realized. Phospholipid nanodiscs containing a model protein are introduced into the polymer film. Such hybrid films with different incorporated membrane proteins give a platform to obtain a better understanding of how transport in a cell functions.
ISSN:1616-301X
1616-3028
DOI:10.1002/adfm.202000378