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通过阳离子稳定化策略提高光解保护基团的光解效率。

Strategy for Engineering High Photolysis Efficiency of Photocleavable Protecting Groups through Cation Stabilization.

机构信息

Centre for Systems Chemistry, Stratingh Institute for Chemistry, Faculty for Science and Engineering, University of Groningen, Nijenborgh 4, 9747 AG Groningen, The Netherlands.

Department of Radiology, Medical Imaging Center, University Medical Center Groningen, University of Groningen, Hanzeplein 1, 9713 GZ Groningen, The Netherlands.

出版信息

J Am Chem Soc. 2022 Jul 13;144(27):12421-12430. doi: 10.1021/jacs.2c04262. Epub 2022 Jul 1.

Abstract

Photolabile protecting groups (PPGs) enable the precise activation of molecular function with light in many research areas, such as photopharmacology, where remote spatiotemporal control over the release of a molecule is needed. The design and application of PPGs in recent years have particularly focused on the development of molecules with high molar absorptivity at long irradiation wavelengths. However, a crucial parameter, which is pivotal to the efficiency of uncaging and which has until now proven highly challenging to improve, is the photolysis quantum yield (QY). Here, we describe a novel and general approach to greatly increase the photolysis QY of heterolytic PPGs through stabilization of an intermediate chromophore cation. When applied to coumarin PPGs, our strategy resulted in systems possessing an up to a 35-fold increase in QY and a convenient fluorescent readout during their uncaging, all while requiring the same number of synthetic steps for their preparation as the usual coumarin systems. We demonstrate that the same QY engineering strategy applies to different photolysis payloads and even different classes of PPGs. Furthermore, analysis of the DFT-calculated energy barriers in the first singlet excited state reveals valuable insights into the important factors that determine photolysis efficiency. The strategy reported herein will enable the development of efficient PPGs tailored for many applications.

摘要

光不稳定保护基团 (PPG) 可在许多研究领域(如光药理)中通过光精确激活分子功能,在这些领域中需要远程时空控制分子的释放。近年来,PPG 的设计和应用特别侧重于开发在长辐照波长下具有高摩尔吸光率的分子。然而,一个关键参数,对解笼效率至关重要,并且迄今为止证明很难提高,是光解量子产率 (QY)。在这里,我们描述了一种通过稳定中间生色团阳离子来大大提高异裂 PPG 光解 QY 的新方法。当应用于香豆素 PPG 时,我们的策略导致系统的 QY 增加了 35 倍,并且在解笼时具有方便的荧光读出,同时其制备所需的合成步骤与通常的香豆素系统相同。我们证明相同的 QY 工程策略适用于不同的光解有效载荷,甚至不同类别的 PPG。此外,对第一单重激发态的 DFT 计算能量势垒的分析揭示了决定光解效率的重要因素的有价值的见解。本文报道的策略将能够开发出针对许多应用的高效 PPG。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/313a/9284546/0ffc604902b7/ja2c04262_0008.jpg

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