A Platform for the Development of Highly Red‐Shifted Azobenzene‐Based Optical Tools
Abstract
Abstract Azobenzenes are versatile photoswitches that can be used to generate elaborate optical tools, including photopharmaceuticals. However, the targeted application‐guided design of new photoswitches with specific properties remains challenging. We have developed synthetic protocols for derivatives of the dfdc (di‐ ortho‐ fluoro‐di‐ ortho‐ chloro) azobenzene scaffold with chemical alterations in the para ‐/ ortho ‐positions and performed an in‐depth study into the effects of their structures on their photophysical properties with an emphasis on the n → π* absorption band using NMR, UV–vis, and X‐ray analysis. The data was used to establish and validate a computational approach that allows to compute realistic UV–vis spectra by combining TD‐DFT excited‐state calculations from 6000 thermally accessible structures generated through MD simulations while considering the high structural flexibility of ortho ‐substituted azobenzenes. We added 15 new visible light‐operated photoswitches to the toolbox for the development of optical devices with relaxation rates across multiple orders of magnitude and identified several examples with stronger bathochromic shifts than the dfdc azobenzene lead structure. Our combined experimental and computational study forms the foundation for the advanced in silico design and synthesis of new highly red‐shifted photoswitches. To showcase the potential of dfdc azobenzenes for the development of chemical tools, we synthesized dfdc ‐OptoBI‐1 and demonstrated its biological activity as a red light‐operated activator of TRPC6 channels in HEK293 cells.
Article Details
Authors (18)
Kyra Lützel
Department of Pharmacy Ludwig‐Maximilians‐Universität München Butenandtstr. 5–13 Munich 81377 Germany
Henryk Laqua
Kenneth S. Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California 1 , Berkeley, California 94720,
Manjima B. Sathian
Benedikt Nißl
Department of Pharmacy Ludwig‐Maximilians‐Universität München Butenandtstr. 5–13, Haus C 81377 Munich Germany
Judit Katalin Szántó
Department of Chemistry Ludwig‐Maximilians‐Universität München Butenandtstr. 5–13 Munich 81377 Germany
Christina‐Anna Senser
Institute of Pharmacy University of Regensburg Universitätsstr. 31 Regensburg 93040 Germany
Gökcen Savasci
Department of Chemistry Ludwig‐Maximilians‐Universität München Butenandtstr. 5–13 Munich 81377 Germany
Lars Allmendinger
Department of Pharmacy Ludwig‐Maximilians‐Universität München Butenandtstr. 5–13 Munich 81377 Germany
Bilal Kicin
Laboratorium für Organische Chemie
Vincent Ruf
Department of Pharmacy Ludwig‐Maximilians‐Universität München Butenandtstr. 5–13 Munich 81377 Germany
Dominik Kammerer
Chair for Photonics and Optoelectronics, Nano-Institute Munich and Department of Physics, Ludwig-Maximilians-Universität (LMU), Königinstr. 10, 80539 Munich, Germany
Theobald Lohmüller
Chair for Photonics and Optoelectronics Nano‐Institute Munich Department of Physics Ludwig‐Maximilians‐Universität München Königinstraße 10 Munich 80539 Germany
Konstantin Karaghiosoff
Ahmed M. Ali
Ursula Storch
Walther Straub Institute of Pharmacology and Toxicology Ludwig‐Maximilians‐Universität München Goethestr. 33 Munich 80336 Germany
Michael Mederos y Schnitzler
Walther Straub Institute of Pharmacology and Toxicology Ludwig‐Maximilians‐Universität München Goethestr. 33 Munich 80336 Germany
Christian Ochsenfeld
Department of Chemistry
David B. Konrad