Intra-molecular triplet energy transfer is a general approach to improve organic fluorophore photostability

被引:0
作者
Qinsi Zheng
Steffen Jockusch
Gabriel G. Rodríguez-Calero
Zhou Zhou
Hong Zhao
Roger B. Altman
Héctor D. Abruña
Scott C. Blanchard
机构
[1] Weill Medical College of Cornell University,Tri
[2] Columbia University,Institutional Training Program in Chemical Biology
[3] Cornell University,Department of Chemistry
[4] Weill Medical College of Cornell University,Department of Chemistry and Chemical Biology
来源
Photochemical & Photobiological Sciences | 2016年 / 15卷
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摘要
Bright, long-lasting and non-phototoxic organic fluorophores are essential to the continued advancement of biological imaging. Traditional approaches towards achieving photostability, such as the removal of molecular oxygen and the use of small-molecule additives in solution, suffer from potentially toxic side effects, particularly in the context of living cells. The direct conjugation of small-molecule triplet state quenchers, such as cyclooctatetraene (COT), to organic fluorophores has the potential to bypass these issues by restoring reactive fluorophore triplet states to the ground state through intra-molecular triplet energy transfer. Such methods have enabled marked improvement in cyanine fluorophore photostability spanning the visible spectrum. However, the generality of this strategy to chemically and structurally diverse fluorophore species has yet to be examined. Here, we show that the proximal linkage of COT increases the photon yield of a diverse range of organic fluorophores widely used in biological imaging applications, demonstrating that the intra-molecular triplet energy transfer mechanism is a potentially general approach for improving organic fluorophore performance and photostability.
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页码:196 / 203
页数:7
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