Pyrene Functionalized Norbornadiene‐Quadricyclane Fluorescent Photoswitches: Characterization of their Spectral Properties and Application in Imaging of Amyloid Beta Plaques

Author:

Ghasemi Shima1,Shamsabadi Monika1,Olesund Axel1,Najera Francisco23,Erbs Hillers‐Bendtsen Andreas4,Edhborg Fredrik1,Aslam Adil S.1,Larsson Wera1,Wang Zhihang5,Amombo Noa Francoise M.1,Salthouse Rebecca Jane6,Öhrström Lars1,Hölzel Helen6,Perez‐Inestrosa E.23,Mikkelsen Kurt V.4,Hanrieder Jörg78,Albinsson Bo1,Dreos Ambra27ORCID,Moth‐Poulsen Kasper19106

Affiliation:

1. Department of Chemistry and Chemical Engineering Chalmers University of Technology 41296 Gothenburg Sweden

2. Instituto de Investigación Biomédica de Málaga y Plataforma en Nanomedicina-IBIMA Plataforma Bionand 29590 Malaga Spain

3. Departamento de Química Orgánica, Facultad de Ciencias Universidad de Málaga 29071 Málaga Spain

4. Department of Chemistry University of Copenhagen Universitetsparken 5 Copenhagen Ø Denmark

5. Department of Materials Science and Metallurgy University of Cambridge 27 Charles Babbage Rd Cambridge CB3 0FS U.K.

6. Department of Chemical Engineering Universitat Politècnica de Catalunya, EEBE Eduard Maristany 10–14 08019 Barcelona Spain

7. Department of Psychiatry and Neurochemistry Sahlgrenska Academy University of Gothenburg 43180 Mölndal Sweden

8. Department of Neurodegenerative Disease Queen Square Institute of Neurology University College London London WC1N 3BG UK.

9. The Institute of Materials Science of Barcelona, ICMAB-CSIC, Bellaterra 08193 Barcelona Spain

10. Catalan Institution for Research & Advanced Studies, ICREA Pg. Llu'ıs Companys 23 08010 Barcelona Spain

Abstract

AbstractThis study presents the synthesis and characterization of two fluorescent norbornadiene (NBD) photoswitches, each incorporating two conjugated pyrene units. Expanding on the limited repertoire of reported photoswitchable fluorescent NBDs, we explore their properties with a focus on applications in bioimaging of amyloid beta (Aβ) plaques. While the fluorescence emission of the NBD decreases upon photoisomerization, aligning with what has been previously reported, for the first time we observed luminescence after irradiation of the quadricyclane (QC) isomer. We deduce how the observed emission is induced by photoisomerization to the excited state of the parent isomer (NBD) which is then the emitting species. Thorough characterizations including NMR, UV‐Vis, fluorescence, X‐ray structural analysis and density functional theory (DFT) calculations provide a comprehensive understanding of these systems. Notably, one NBD‐QC system exhibits exceptional durability. Additionally, these molecules serve as effective fluorescent stains targeting Aβ plaques in situ, with observed NBD/QC switching within the plaques. Molecular docking simulations explore NBD interactions with amyloid, unveiling novel binding modes. These insights mark a crucial advancement in the comprehension and design of future photochromic NBDs for bioimaging applications and beyond, emphasizing their potential in studying and addressing protein aggregates.

Publisher

Wiley

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