A Photoresponsive Hybrid of Viruses and Supramolecular Peptide Fibers for Multidimensional Control of Patterning and Infection

A Atsuya Yaguchi N Noriyuki Uchida (Department of Applied Chemistry, Graduate School of Engineering) D Daiki Miura (Department of Physics School of Science Kitasato University 1‐15‐1 Kitasato Sagamihara, Minami‐ku 252–0373 Japan) G Go Watanabe (Department of Data Science, School of Frontier Engineering, Kitasato University, 1-15-1 Kitazato, Minami-ku, Sagamihara, Kanagawa 252-0373, Japan) H Hirotsugu Hiramatsu I Itsuki Ajioka (Center for Brain Integration Research (CBIR), Institute of Integrated Research) T Teruhiko Matsubara (Department of Biosciences and Informatics, Faculty of Science and Technology Keio University Yokohama Kanagawa 223–8522 Japan) T Toshinori Sato (Department of Biosciences and Informatics, Faculty of Science and Technology Keio University Yokohama Kanagawa 223–8522 Japan) C Chinbat Enkhzaya (Department of Applied Chemistry Graduate School of Engineering Tokyo University of Agriculture and Technology 2‐24‐16 Naka‐cho Koganei Tokyo 184–8588 Japan) S Shunto Itani (Department of Applied Chemistry Graduate School of Engineering Tokyo University of Agriculture and Technology 2‐24‐16 Naka‐cho Koganei Tokyo 184–8588 Japan) T Tomokazu Saito (Department of Applied Chemistry Graduate School of Engineering Tokyo University of Agriculture and Technology 2‐24‐16 Naka‐cho Koganei Tokyo 184–8588 Japan) T Takahiro Muraoka (Department of Applied Chemistry, Graduate School of Engineering)

Abstract

AbstractViruses are versatile colloidal materials in their biofunctions, monodispersed and periodic structures, and high surface designability. For expanding the applicability of virus‐based materials, spatiotemporally controlled immobilization and dispersion of viruses with retained activity should be useful, though control of the dynamic nature of viruses hybridized with commonly used polymers has been difficult due to their strong interactions. Here, we report a self‐assembling peptide (A2Az) enabling photo control of adhesion and dispersion of M13 bacteriophage virus (M13 phage) and successfully demonstrate patterning of localization and infection of the virus. A2Az is a cationic peptide with amphiphilicity that consists of eight amino acid residues containing a photo‐responsive azobenzene group at the second position and self‐assembles into a helical supramolecular fiber to form a hydrogel. The helical fibrillar morphology of A2Az exhibits strong interaction with M13 phage, allowing for immobilization not only on a two‐dimensional surface but also in a three‐dimensional hydrogel with suppression of infectivity. The A2Az fiber undergoes a light‐triggered fiber‐to‐particle transition and releases the immobilized M13 phage with retained infectivity for the photo‐controlled patterning of localization and infection. This approach has potential applicability to various virus‐based biomaterials, such as structural materials and materials for photo‐selective gene transfection to cells.

Article Details

Volume / Issue Vol. 64, Issue 41
Published October 06, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

A

Atsuya Yaguchi

N

Noriyuki Uchida

Department of Applied Chemistry, Graduate School of Engineering

D

Daiki Miura

Department of Physics School of Science Kitasato University 1‐15‐1 Kitasato Sagamihara, Minami‐ku 252–0373 Japan

G

Go Watanabe

Department of Data Science, School of Frontier Engineering, Kitasato University, 1-15-1 Kitazato, Minami-ku, Sagamihara, Kanagawa 252-0373, Japan

H

Hirotsugu Hiramatsu

I

Itsuki Ajioka

Center for Brain Integration Research (CBIR), Institute of Integrated Research

T

Teruhiko Matsubara

Department of Biosciences and Informatics, Faculty of Science and Technology Keio University Yokohama Kanagawa 223–8522 Japan

T

Toshinori Sato

Department of Biosciences and Informatics, Faculty of Science and Technology Keio University Yokohama Kanagawa 223–8522 Japan

C

Chinbat Enkhzaya

Department of Applied Chemistry Graduate School of Engineering Tokyo University of Agriculture and Technology 2‐24‐16 Naka‐cho Koganei Tokyo 184–8588 Japan

S

Shunto Itani

Department of Applied Chemistry Graduate School of Engineering Tokyo University of Agriculture and Technology 2‐24‐16 Naka‐cho Koganei Tokyo 184–8588 Japan

T

Tomokazu Saito

Department of Applied Chemistry Graduate School of Engineering Tokyo University of Agriculture and Technology 2‐24‐16 Naka‐cho Koganei Tokyo 184–8588 Japan

T

Takahiro Muraoka

Department of Applied Chemistry, Graduate School of Engineering