Yanshyna Oksana, Białek Michał J, Chashchikhin Oleg V, Klajn Rafal
Department of Organic Chemistry, Weizmann Institute of Science, Rehovot, 76100, Israel.
Department of Chemistry, University of Wrocław, 14 F. Joliot-Curie St, 50383, Wrocław, Poland.
Commun Chem. 2022 Mar 30;5(1):44. doi: 10.1038/s42004-022-00658-8.
Confining molecules within well-defined nanosized spaces can profoundly alter their physicochemical characteristics. For example, the controlled aggregation of chromophores into discrete oligomers has been shown to tune their optical properties whereas encapsulation of reactive species within molecular hosts can increase their stability. The resazurin/resorufin pair has been widely used for detecting redox processes in biological settings; yet, how tight confinement affects the properties of these two dyes remains to be explored. Here, we show that a flexible PdL coordination cage can efficiently encapsulate both resorufin and resazurin in the form of dimers, dramatically modulating their optical properties. Furthermore, binding within the cage significantly decreases the reduction rate of resazurin to resorufin, and the rate of the subsequent reduction of resorufin to dihydroresorufin. During our studies, we also found that upon dilution, the PdL cage disassembles to afford PdL species, which lacks the ability to form inclusion complexes - a process that can be reversed upon the addition of the strongly binding resorufin/resazurin guests. We expect that the herein disclosed ability of a water-soluble cage to reversibly modulate the optical and chemical properties of a molecular redox probe will expand the versatility of synthetic fluorescent probes in biologically relevant environments.
将分子限制在明确界定的纳米空间内可以深刻改变它们的物理化学特性。例如,已证明发色团可控聚合成离散的低聚物可调节其光学性质,而将活性物种封装在分子主体内可提高其稳定性。刃天青/试卤灵对已被广泛用于检测生物环境中的氧化还原过程;然而,紧密限制如何影响这两种染料的性质仍有待探索。在这里,我们表明一种柔性的PdL配位笼可以有效地以二聚体形式封装试卤灵和刃天青,显著调节它们的光学性质。此外,在笼内的结合显著降低了刃天青还原为试卤灵的速率,以及随后试卤灵还原为二氢试卤灵的速率。在我们的研究过程中,我们还发现稀释时,PdL笼会解体形成缺乏形成包合物能力的PdL物种——这一过程在加入强结合的试卤灵/刃天青客体后可以逆转。我们预计,本文公开的水溶性笼可逆调节分子氧化还原探针光学和化学性质的能力将扩大合成荧光探针在生物相关环境中的多功能性。