Hauptman-Woodward Medical Research Institute, 700 Ellicot Street, Buffalo, NY 14203, USA.
The Hamburg Centre for Ultrafast Imaging, Universität Hamburg, Luruper Chaussee 149, 22761 Hamburg, Germany.
Acta Crystallogr D Struct Biol. 2021 Oct 1;77(Pt 10):1218-1232. doi: 10.1107/S2059798321008809. Epub 2021 Sep 22.
Careful selection of photocaging approaches is critical to achieve fast and well synchronized reaction initiation and perform successful time-resolved structural biology experiments. This review summarizes the best characterized and most relevant photocaging groups previously described in the literature. It also provides a walkthrough of the essential factors to consider in designing a suitable photocaged molecule to address specific biological questions, focusing on photocaging groups with well characterized spectroscopic properties. The relationships between decay rates (k in s), quantum yields (ϕ) and molar extinction coefficients (ϵ in M cm) are highlighted for different groups. The effects of the nature of the photocaged group on these properties is also discussed. Four main photocaging scaffolds are presented in detail, o-nitrobenzyls, p-hydroxyphenyls, coumarinyls and nitrodibenzofuranyls, along with three examples of the use of this technology. Furthermore, a subset of specialty photocages are highlighted: photoacids, molecular photoswitches and metal-containing photocages. These extend the range of photocaging approaches by, for example, controlling pH or generating conformationally locked molecules.
精心选择光笼方法对于实现快速且良好同步的反应引发以及成功进行时分辨断结构生物学实验至关重要。本综述总结了文献中先前描述的最具代表性和最相关的光笼基团。它还提供了设计合适的光笼分子以解决特定生物学问题时需要考虑的基本因素的概述,重点是具有良好特征化光谱性质的光笼基团。不同基团的衰减速率(k in s)、量子产率(ϕ)和摩尔消光系数(ϵ in M ⁇ cm)之间的关系被突出显示。还讨论了光笼基团的性质对这些性质的影响。详细介绍了四种主要的光笼支架,即邻硝基苄基、对羟基苯基、香豆素基和硝二苯并呋喃基,以及该技术的三个应用实例。此外,还强调了一组特种光笼:光酸、分子光开关和含金属的光笼。这些方法通过例如控制 pH 值或生成构象锁定分子来扩展光笼方法的范围。