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具有光控细胞器特异性易位的构象受限发射性阳离子大环。

Conformationally Confined Emissive Cationic Macrocycle with Photocontrolled Organelle-Specific Translocation.

机构信息

College of Chemistry, State Key Laboratory of Elemento-Organic Chemistry, Nankai University, Tianjin, 300071, P. R. China.

Haihe Laboratory of Sustainable Chemical Transformations, Tianjin, 300192, P. R. China.

出版信息

Adv Sci (Weinh). 2022 Aug;9(23):e2201962. doi: 10.1002/advs.202201962. Epub 2022 Jun 17.

Abstract

The optimization of molecular conformation and aggregation modes is of great significance in creation of new luminescent materials for biochemical research and medical diagnostics. Herein, a highly emissive macrocycle (1) is reported, which is constructed by the cyclization reaction of triphenylamine with benzyl bromide and exhibits very distinctive photophysical performance both in aqueous solution and the solid state. Structural analysis reveals that the 1 can form self-interpenetrated complex and emit bright yellow fluorescence in the crystal lattice. The distorted yet symmetrical structure can endow 1 with unique two-photon absorption property upon excitation by near-infrared light. Also, 1 can be utilized as an efficient photosensitizer to produce singlet oxygen ( O ) both in inanimate milieu and under cellular environment. More intriguingly, due to the strong association of 1 with negatively charged biomacromolecules, organelle-specific migration is achieved from lysosome to nucleus during the O -induced cell apoptosis process. To be envisaged, this conformationally confined cationic macrocycle with photocontrolled lysosome-to-nucleus translocation may provide a feasible approach for in situ identifying different biospecies and monitoring physiological events at subcellular level.

摘要

优化分子构象和聚集态对于创造用于生化研究和医学诊断的新型发光材料具有重要意义。在此,我们报道了一种高发光的大环(1),它是通过三苯胺与溴化苄的环化反应构建的,在水溶液和固态中均表现出非常独特的光物理性能。结构分析表明,1 可以形成自穿插的配合物,并在晶格中发射出亮黄色的荧光。扭曲但对称的结构可以赋予 1 在近红外光激发下独特的双光子吸收特性。此外,1 可以作为有效的光敏剂,在无生命环境和细胞环境下均能产生单线态氧(1O2)。更有趣的是,由于 1 与带负电荷的生物大分子强烈结合,在 1O2 诱导的细胞凋亡过程中,从溶酶体到细胞核的细胞器特异性迁移得以实现。可以预见的是,这种构象受限的具有光控溶酶体到细胞核易位的阳离子大环可能为原位识别不同的生物种属和监测亚细胞水平的生理事件提供一种可行的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cdb2/9376817/68c4aa31d934/ADVS-9-2201962-g005.jpg

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