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Leong, L. M.

Publications and source records attributed to Leong, L. M..

3 recordsLinked to original sources

Precise temporal control of GEVI conformations enables the visualization of charge migration in a fluorescent protein resulting in an improved optical response

Rapid and reproducible optical transitions of a fluorescent protein (FP) can be achieved with a Genetically Encoded Voltage Indicator (GEVI) via manipulation of the membrane potential. These transitions revealed novel effects of internal mutations near the chromophore that would not be detected under steady state conditions. Mutating an internal threonine (T203) affected the speed of the voltage-dependent fluorescence transition suggesting a conformational change inside the protein. These optical transitions also demonstrated interplay between internal and externally oriented sidechains of the {beta}-can structure. Replacing the steric hindrance of a phenylalanine near the chromophore with threonine (F165T) did not alter the resting fluorescence but resulted in a more complex fluorescent transition providing evidence for a flexible chromophore undergoing conformational changes. F165T orientation was influenced by the flanking external amino acids at positions 164 and 166 with 164F/165T/166T exacerbating the complexity of the voltage-dependent transition while 164T/165T/166F reduced the flexibility of the chromophore resembling the transition pattern of the original F165 version. Alphafold predictions reveal a threonine switch with different orientations of the F165T internal side chain depending on the direction of the offset in polarity at external positions 164 and 166. The crystal structures of the pH-sensitive FP, Super Ecliptic pHluorin and two derivatives solved in varying pH conditions also indicate interactions between the external protein surface and the internal environment providing another example of a threonine switch near the chromophore at T203. This ability to orient internal sidechains has led to the development of a novel GEVI that gets brighter upon depolarization of the plasma membrane, works at low light levels, is less susceptible to physiological pH, and provides in vivo signals. These observations affecting fluorescent transitions should also prove valuable to the development of any FP-based biosensor.

neuroscience↗

Proton wires mediate the optical signal for ArcLight-type Genetically Encoded Voltage Indicators

The genetically encoded voltage indicators, ArcLight and its derivatives, mediate voltage dependent optical signals by intermolecular, electrostatic interactions between neighboring fluorescent proteins (FPs) via proton wires. A random mutagenesis event placed a negative charge on the exterior of the FP resulting in a greater than 10-fold improvement of the voltage-dependent optical signal. Repositioning this negative charge on the exterior of the FP reversed the polarity of voltage-dependent optical signals suggesting the presence of hot spots capable of interacting with the negative charge on a neighboring FP thereby changing the fluorescent output. To explore the potential effect on the chromophore state, voltage-clamp fluorometry was performed with alternating excitation at 390 nm followed by excitation at 470 nm resulting in several mutants exhibiting voltage-dependent, ratiometric optical signals of opposing polarities. However, the kinetics, voltage ranges, and optimal FP fusion sites were different depending on the wavelength of excitation. These results suggest that the FP has external, electrostatic pathways capable of quenching fluorescence that are wavelength specific. ArcLight-derived GEVIs may therefore offer a novel way to map how conditions external to the {beta}-can structure can affect the fluorescence of the chromophore and transiently manipulate those pathways via conformational changes mediated by whole cell voltage clamp. Statement of SignificanceArcLight-type GEVIs utilize proton pathways that send charge information outside of the FP to the internal chromophore enabling voltage induced conformational changes to affect fluorescence. These pathways are excitation wavelength specific suggesting that different external positions affect the protonated and deprotonated states of the chromophore.

biophysics↗

Improving the flexibility of Genetically Encoded Voltage Indicators via intermolecular FRET

A new family of Genetically Encoded Voltage Indicators (GEVIs) has been developed based on inter-molecular Forster Resonance Energy Transfer (FRET). To test the hypothesis that the GEVI, ArcLight, functions via interactions between the fluorescent protein (FP) domain of neighboring probes, the FP of ArcLight was replaced with either a FRET donor or acceptor FP. We discovered relatively large FRET signals only when cells were co-transfected with both the FRET donor and acceptor GEVIs. Using a CFP donor and an RFP acceptor, we were able to observe a voltage dependent signal with a Stokes shift of over 200 nm. The intermolecular FRET strategy also works for rhodopsin-based probes potentially improving their flexibility as well. Separating the FRET pair into two distinct proteins has important advantages over intramolecular FRET constructs. First, the signals are larger. Apparently the voltage-induced conformational change moves the two FPs independently thereby increasing the dynamic range. Second, the expression of the FRET donor and acceptor can be restricted independently enabling greater cell type specificity as well as refined subcellular voltage reporting.

neuroscience↗