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Tethered Bichromophoric Fluorophore Quencher Voltage Sensitive Dyes

DOI:10.1021/acssensors.8b01032 期刊:ACS Sensors 出版年份:2018 更新时间:2025-09-09 09:28:46
摘要: Voltage sensitive dyes (VSDs) are used for in vitro drug screening and for imaging of patterns of electrical activity in tissue. Wide application of this technology depends on the availability of sensors with high sensitivity (percent change of fluorescence per 100mV), high fluorescence quantum yield, and fast response kinetics. A promising approach uses a 2-component system consisting of anionic membrane permeable quenchers with fluorophores labeling one side of the membrane; this produces voltage-dependent fluorescence quenching. However, the quencher must be kept at low concentrations to minimize pharmacological effects, thus limiting sensitivity. By developing tethered bichromophoric fluorophore quencher (TBFQ) dyes, where the fluorophore and quencher are covalently connected by a long hydrophobic chain, the sensitivity is maximized and is independent of VSD concentration. A series of 13 TBFQ dyes based on the AminoNaphthylEthenylPyridinium (ANEP) fluorophore and the dipicrylamine anion (DPA) quencher have been synthesized and tested in an artificial lipid bilayer apparatus. The best of these, TBFQ1, shows a 2.5 fold change in fluorescence per 100mV change in membrane potential, and the response kinetics is in 10-20 ms range. This sensitivity is an order of magnitude better than commonly used VSDs. However the fluorescence quantum yield is only 1.6%, which may make this first generation of TBFQ VSDs impractical for in vivo electrical imaging. Nevertheless, the design principles established here can serve as foundation for improved TBFQ VSDs. We believe this approach promises to greatly enhance our ability to monitor electrical activity in cells and tissues.
作者: Ping Yan,Corey Acker,Leslie M. Loew
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To develop tethered bichromophoric fluorophore quencher (TBFQ) dyes for voltage sensing with high sensitivity, high fluorescence quantum yield, and fast response kinetics.

The study demonstrated a new class of tethered bichromophoric fluorophore quencher (TBFQ) voltage sensors with unprecedentedly high voltage sensitivities and sufficiently rapid response to detect action potentials. Despite the low fluorescence quantum yield of the first generation TBFQ VSDs, the design principles established can serve as a foundation for improved VSDs.

The fluorescence quantum yield of the best TBFQ VSD is relatively low (1.6%), which may limit its application for fast high resolution in-vivo imaging of electrical activity due to low light levels compromising the signal-to-noise ratio.

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