研究目的
To develop tethered bichromophoric fluorophore quencher (TBFQ) dyes for voltage sensing with high sensitivity, high fluorescence quantum yield, and fast response kinetics.
研究成果
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.
研究不足
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.
1:Experimental Design and Method Selection:
The study involved the synthesis and testing of 13 TBFQ dyes based on the ANEP fluorophore and DPA quencher in an artificial lipid bilayer apparatus. The design rationale was to covalently connect the fluorophore and quencher with a long hydrophobic chain to maximize sensitivity and independence from VSD concentration.
2:Sample Selection and Data Sources:
The experiments were conducted using an artificial lipid bilayer apparatus to apply controlled voltage steps while recording fluorescence.
3:List of Experimental Equipment and Materials:
The hemispherical bilayer apparatus was used for applying voltage steps and recording fluorescence. The dyes synthesized were based on ANEP and DPA.
4:Experimental Procedures and Operational Workflow:
The fluorescence responses of TBFQ VSDs to voltage steps were measured to determine design principles for optimizing voltage sensitivity. The kinetics of the response was analyzed by fitting the curve to single exponential decay.
5:Data Analysis Methods:
The sensitivity and kinetics of the TBFQ VSDs were analyzed, including the calculation of R0 for the donor/acceptor pair and the measurement of fluorescence quantum yield.
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