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      Invitation to Biomimetics

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          Atomic Force Microscope

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            The London—van der Waals attraction between spherical particles

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              Biophysical model of bacterial cell interactions with nanopatterned cicada wing surfaces.

              The nanopattern on the surface of Clanger cicada (Psaltoda claripennis) wings represents the first example of a new class of biomaterials that can kill bacteria on contact based solely on their physical surface structure. The wings provide a model for the development of novel functional surfaces that possess an increased resistance to bacterial contamination and infection. We propose a biophysical model of the interactions between bacterial cells and cicada wing surface structures, and show that mechanical properties, in particular cell rigidity, are key factors in determining bacterial resistance/sensitivity to the bactericidal nature of the wing surface. We confirmed this experimentally by decreasing the rigidity of surface-resistant strains through microwave irradiation of the cells, which renders them susceptible to the wing effects. Our findings demonstrate the potential benefits of incorporating cicada wing nanopatterns into the design of antibacterial nanomaterials. Copyright © 2013 Biophysical Society. Published by Elsevier Inc. All rights reserved.
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                Author and article information

                Journal
                COPBEY
                Hikaku seiri seikagaku(Comparative Physiology and Biochemistry)
                Hikaku seiri seikagaku(Comparative Physiology and Biochemistry)
                The Japanese Society for Comparative Physiology and Biochemistry
                0916-3786
                1881-9346
                2016
                2016
                : 33
                : 3
                : 98-107
                Affiliations
                [1 ]Professor Emeritus, Hokkaido University
                Article
                10.3330/hikakuseiriseika.33.98
                34c09ee7-9f8c-4e45-96aa-567130f3cdaa
                © 2016
                History

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