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用于活细胞和单分子成像的自修复荧光团的电子调谐

Electronic tuning of self-healing fluorophores for live-cell and single-molecule imaging.

作者信息

Zheng Qinsi, Jockusch Steffen, Zhou Zhou, Altman Roger B, Zhao Hong, Asher Wesley, Holsey Michael, Mathiasen Signe, Geggier Peter, Javitch Jonathan A, Blanchard Scott C

机构信息

Tri-Institutional Training Program in Chemical Biology, Weill Cornell Medicine, New York, NY.

Department of Chemistry, Columbia University, New York, NY.

出版信息

Chem Sci. 2017 Jan 1;8(1):755-762. doi: 10.1039/C6SC02976K. Epub 2016 Sep 7.

Abstract

Bright, long-lasting organic fluorophores enable a broad range of imaging applications. "Self-healing" fluorophores, in which intra-molecularly linked protective agents quench photo-induced reactive species, exhibit both enhanced photostability and biological compatibility. However, the self-healing strategy has yet to achieve its predicted potential, particularly in the presence of ambient oxygen where live-cell imaging studies must often be performed. To identify key bottlenecks in this technology that can be used to guide further engineering developments, we synthesized a series of Cy5 derivatives linked to the protective agent cyclooctatetraene (COT) and examined the photophysical mechanisms curtailing their performance. The data obtained reveal that the photostability of self-healing fluorophores is limited by reactivity of the COT protective agent. The addition of electron withdrawing substituents to COT reduced its susceptibility to reactions with molecular oxygen and the fluorophore to which it is attached and increased its capacity to participate in triplet energy transfer. Exploiting these insights, we designed and synthesized a suite of modified COT-fluorophores spanning the visible spectrum that exhibited markedly increased intra-molecular photostabilization. Under ambient oxygen conditions, the photostability of Cy3 and Cy5 fluorophore derivatives increased by 3- and 9-fold and by 2- and 6-fold in living cells, respectively. We further show that this approach can improve a silicon rhodamine fluorophore. These findings offer a clear strategy for achieving the full potential of the self-healing strategy and its application to the gamut of fluorophore species commonly used for biomedical imaging.

摘要

明亮、持久的有机荧光团可实现广泛的成像应用。“自愈”荧光团中,分子内连接的保护剂可淬灭光诱导的活性物种,兼具增强的光稳定性和生物相容性。然而,自愈策略尚未发挥其预期潜力,尤其是在常需进行活细胞成像研究的环境氧存在的情况下。为了确定该技术中可用于指导进一步工程开发的关键瓶颈,我们合成了一系列与保护剂环辛四烯(COT)相连的Cy5衍生物,并研究了限制其性能的光物理机制。获得的数据表明,自愈荧光团的光稳定性受COT保护剂反应性的限制。在COT上添加吸电子取代基降低了其与分子氧及其连接的荧光团反应的敏感性,并提高了其参与三线态能量转移的能力。利用这些见解,我们设计并合成了一系列覆盖可见光谱的改性COT荧光团,其分子内光稳定性显著提高。在环境氧条件下,Cy3和Cy5荧光团衍生物的光稳定性分别提高了3倍和9倍,在活细胞中分别提高了2倍和6倍。我们进一步表明,这种方法可以改进硅罗丹明荧光团。这些发现为充分发挥自愈策略的潜力及其在生物医学成像常用的各种荧光团物种中的应用提供了明确的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fda3/5299821/59ad9cd3bb59/c6sc02976k-s1.jpg

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