A Platform for the Development of Highly Red-Shifted Azobenzene-Based Optical Tools

IF 16.9 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Kyra Lützel, Dr. Henryk Laqua, Manjima B. Sathian, Benedikt Nißl, Judit Katalin Szántó, Christina-Anna Senser, Gökcen Savasci, Dr. Lars Allmendinger, Bilal Kicin, Vincent Ruf, Dominik Kammerer, Theobald Lohmüller, Prof. Dr. Konstantin Karaghiosoff, Dr. Ahmed M. Ali, Prof. Dr. Ursula Storch, Prof. Dr. Michael Mederos y Schnitzler, Prof. Dr. Christian Ochsenfeld, Prof. Dr. David B. Konrad
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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.

Abstract Image

高红移偶氮苯基光学工具的开发平台
偶氮苯是一种多功能的光开关,可用于制造包括光药物在内的精密光学工具。然而,具有特定特性的新型光开关的定向应用导向设计仍然具有挑战性。我们已经开发了dfdc(二邻氟二邻氯)偶氮苯支架衍生物的合成方案,其对位/邻位发生了化学变化,并对其光物理性质进行了深入研究,重点是使用核磁共振、紫外可见和x射线分析n→π*吸收带。这些数据被用于建立一种计算方法,该方法可以通过结合对这些结构柔性邻取代偶氮苯进行MD模拟产生的6000个热可达结构的TD-DFT激发态计算来计算真实的紫外-可见光谱。我们在工具箱中增加了15个新的可见光操作光开关,用于开发具有多个数量级弛豫速率的光学器件,并确定了几个比dfdc偶氮苯铅结构具有更强的色移的例子。我们的实验和计算相结合的研究为新型高红移光开关的先进硅设计和合成奠定了基础。为了展示dfdc偶氮苯在化学工具开发方面的潜力,我们合成了dfdc- optobi -1,并证明了其作为HEK293细胞中TRPC6通道的红光激活剂的生物活性。
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来源期刊
CiteScore
26.60
自引率
6.60%
发文量
3549
审稿时长
1.5 months
期刊介绍: Angewandte Chemie, a journal of the German Chemical Society (GDCh), maintains a leading position among scholarly journals in general chemistry with an impressive Impact Factor of 16.6 (2022 Journal Citation Reports, Clarivate, 2023). Published weekly in a reader-friendly format, it features new articles almost every day. Established in 1887, Angewandte Chemie is a prominent chemistry journal, offering a dynamic blend of Review-type articles, Highlights, Communications, and Research Articles on a weekly basis, making it unique in the field.
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