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Programmed Self-Assembly of DNA Nanosheets with Discrete Single-Molecule Thickness and Interfacial Mechanics: Design, Simulation, and Characterization.
Cervantes-Salguero, Keitel; Gutiérrez Fosado, Yair Augusto; Megone, William; Gautrot, Julien E; Palma, Matteo.
Afiliación
  • Cervantes-Salguero K; Department of Chemistry, School of Physical and Chemical Sciences, Queen Mary University of London, London E1 4NS, UK.
  • Gutiérrez Fosado YA; School of Physics and Astronomy, University of Edinburgh, Peter Guthrie Tait Road, Edinburgh EH9 3FD, UK.
  • Megone W; School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, UK.
  • Gautrot JE; School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, UK.
  • Palma M; Department of Chemistry, School of Physical and Chemical Sciences, Queen Mary University of London, London E1 4NS, UK.
Molecules ; 28(9)2023 Apr 24.
Article en En | MEDLINE | ID: mdl-37175096
DNA is programmed to hierarchically self-assemble into superstructures spanning from nanometer to micrometer scales. Here, we demonstrate DNA nanosheets assembled out of a rationally designed flexible DNA unit (F-unit), whose shape resembles a Feynman diagram. F-units were designed to self-assemble in two dimensions and to display a high DNA density of hydrophobic moieties. oxDNA simulations confirmed the planarity of the F-unit. DNA nanosheets with a thickness of a single DNA duplex layer and with large coverage (at least 30 µm × 30 µm) were assembled from the liquid phase at the solid/liquid interface, as unambiguously evidenced by atomic force microscopy imaging. Interestingly, single-layer nanodiscs formed in solution at low DNA concentrations. DNA nanosheet superstructures were further assembled at liquid/liquid interfaces, as demonstrated by the fluorescence of a double-stranded DNA intercalator. Moreover, the interfacial mechanical properties of the nanosheet superstructures were measured as a response to temperature changes, demonstrating the control of interfacial shear mechanics based on DNA nanostructure engineering. The rational design of the F-unit, along with the presented results, provide an avenue toward the controlled assembly of reconfigurable/responsive nanosheets and membranes at liquid/liquid interfaces, to be potentially used in the characterization of biomechanical processes and materials transport.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Nanotecnología / Nanoestructuras Idioma: En Revista: Molecules Asunto de la revista: BIOLOGIA Año: 2023 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Nanotecnología / Nanoestructuras Idioma: En Revista: Molecules Asunto de la revista: BIOLOGIA Año: 2023 Tipo del documento: Article
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