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      Photoresponsive peptide materials: Spatiotemporal control of self-assembly and biological functions

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      1,2 , a) , , 1,2
      Biophysics Reviews
      AIP Publishing LLC

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          Abstract

          Peptides work as both functional molecules to modulate various biological phenomena and self-assembling artificial materials. The introduction of photoresponsive units to peptides allows the spatiotemporal remote control of their structure and function upon light irradiation. This article overviews the photoresponsive peptide design, interaction with biomolecules, and applications in self-assembling materials over the last 30 years. Peptides modified with photochromic (photoisomerizable) molecules, such as azobenzene and spiropyran, reversibly photo-controlled the binding to biomolecules and nanostructure formation through self-assembly. Photocleavable molecular units irreversibly control the functions of peptides through cleavage of the main chain and deprotection by light. Photocrosslinking between peptides or between peptides and other biomolecules enhances the structural stability of peptide assemblies and complexes. These photoresponsive peptides spatiotemporally controlled the formation and dissociation of peptide assemblies, gene expressions, protein–drug interactions, protein–protein interactions, liposome deformation and motility, cytoskeleton structure and stability, and cell functions by appropriate light irradiation. These molecular systems can be applied to photo-control biological functions, molecular robots, artificial cells, and next-generation smart drug delivery materials.

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          Most cited references173

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          Azobenzene photoswitches for biomolecules.

          The photoisomerization of azobenzene has been known for almost 75 years but only recently has this process been widely applied to biological systems. The central challenge of how to productively couple the isomerization process to a large functional change in a biomolecule has been met in a number of instances and it appears that effective photocontrol of a large variety of biomolecules may be possible. This critical review summarizes key properties of azobenzene that enable its use as a photoswitch in biological systems and describes strategies for using azobenzene photoswitches to drive functional changes in peptides, proteins, nucleic acids, lipids, and carbohydrates (192 references). This journal is © The Royal Society of Chemistry 2011
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            Trends in peptide drug discovery

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              Spiropyran-based dynamic materials.

              In the past few years, spiropyran has emerged as the molecule-of-choice for the construction of novel dynamic materials. This unique molecular switch undergoes structural isomerisation in response to a variety of orthogonal stimuli, e.g. light, temperature, metal ions, redox potential, and mechanical stress. Incorporation of this switch onto macromolecular supports or inorganic scaffolds allows for the creation of robust dynamic materials. This review discusses the synthesis, switching conditions, and use of dynamic materials in which spiropyran has been attached to the surfaces of polymers, biomacromolecules, inorganic nanoparticles, as well as solid surfaces. The resulting materials show fascinating properties whereby the state of the switch intimately affects a multitude of useful properties of the support. The utility of the spiropyran switch will undoubtedly endow these materials with far-reaching applications in the near future.
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                Author and article information

                Contributors
                Journal
                Biophys Rev (Melville)
                Biophys Rev (Melville)
                BRIEIM
                Biophysics Reviews
                AIP Publishing LLC
                2688-4089
                December 2023
                18 December 2023
                18 December 2023
                : 4
                : 4
                : 041303
                Affiliations
                [1 ]Department of Chemistry and Biotechnology, Graduate School of Engineering, Tottori University , Koyama-Minami 4-101, Tottori 680-8552, Japan
                [2 ]Center for Research on Green Sustainable Chemistry, Tottori University , Koyama-Minami 4-101, Tottori 680-8552, Japan
                Author notes
                [a) ] Author to whom correspondence should be addressed: ma2ra-k@ 123456tottori-u.ac.jp
                Author information
                https://orcid.org/0000-0001-5472-7860
                https://orcid.org/0000-0002-7658-7827
                Article
                5.0179171 BPR23-RV-00041
                10.1063/5.0179171
                10903425
                38505425
                d4824d2c-837c-46d7-ac4e-1e871308352b
                © 2023 Author(s).

                All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 29 September 2023
                : 27 November 2023
                Page count
                Pages: 23
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