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Boron Difluoride Curcuminoid Fluorophores with Enhanced Two‐Photon Excited Fluorescence Emission and Versatile Living‐Cell Imaging Properties
Authors:Dr. Kenji Kamada  Tomotaka Namikawa  Dr. Sébastien Senatore  Dr. Cédric Matthews  Dr. Pierre‐François Lenne  Dr. Olivier Maury  Dr. Chantal Andraud  Dr. Miguel Ponce‐Vargas  Dr. Boris Le Guennic  Prof. Denis Jacquemin  Dr. Peter Agbo  Dr. Dahlia D. An  Dr. Stacey S. Gauny  Dr. Xin Liu  Dr. Rebecca J. Abergel  Prof. Frédéric Fages  Dr. Anthony D'Aléo
Affiliation:1. IFMRI, National Institute of Advanced Industrial Science and Technology, Ikeda, Osaka, Japan;2. Department of Chemistry, School of Science and Technology, Kwansei Gakuin University, Sanda, Hyogo, Japan;3. Aix Marseille Université, CNRS, Institutde Biologie du Développement de Marseille, UMR7288, Marseille 9, France;4. Université Lyon 1, ENS Lyon, CNRS, UMR 5182, 69364, Lyon, France;5. Institut des Sciences Chimiques de Rennes, UMR 6226 CNRS, Université de Rennes 1, Rennes Cedex, France;6. Laboratoire CEISAM, UMR CNRS 6230, Université de Nantes, Nantes Cedex 3, France;7. Institut Universitaire de France, Paris Cedex 05, France;8. Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA, USA;9. Aix Marseille Université, CNRS, CINaM UMR 7325, Campus de Luminy, Marseille, France
Abstract:The synthesis of boron difluoride complexes of a series of curcuminoid derivatives containing various donor end groups is described. Time‐dependent (TD)‐DFT calculations confirm the charge‐transfer character of the second lowest‐energy transition band and ascribe the lowest energy band to a “cyanine‐like” transition. Photophysical studies reveal that tuning the donor strength of the end groups allows covering a broad spectral range, from the visible to the NIR region, of the UV–visible absorption and fluorescence spectra. Two‐photon‐excited fluorescence and Z‐scan techniques prove that an increase in the donor strength or in the rigidity of the backbone results in a considerable increase in the two‐photon cross section, reaching 5000 GM, with predominant two‐photon absorption from the S0–S2 charge‐transfer transition. Direct comparisons with the hemicurcuminoid derivatives show that the two‐photon active band for the curcuminoid derivatives has the same intramolecular charge‐transfer character and therefore arises from a dipolar structure. Overall, this structure–relationship study allows the optimization of the two‐photon brightness (i.e., 400–900 GM) with one dye that emits in the NIR region of the spectrum. In addition, these dyes demonstrate high intracellular uptake efficiency in Cos7 cells with emission in the visible region, which is further improved by using porous silica nanoparticles as dye vehicles for the imaging of two mammalian carcinoma cells type based on NIR fluorescence emission.
Keywords:cell imaging  density functional calculations  dipolar dyes  photophysics  two-photon processes
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