Fluorescent Voltage Sensor

A fluorescent voltage sensor is a molecular probe that converts changes in electrical potential across a cell membrane into changes in fluorescence, enabling optical measurement of neural activity. In neurons, membrane depolarization or hyperpolarization alters the conformation, charge distribution, or retinal state of voltage-sensitive proteins, producing a measurable change in emitted light. These sensors can report action potentials and subthreshold voltage dynamics in living cells and neural circuits, often with high spatial resolution. By linking membrane physiology to fluorescence imaging, they support studies of neuronal communication, circuit function, and disease-related changes in electrical signaling.

Fluorescent Voltage Sensor - Related Videos

Research

JoVE Journal - Neuroscience

Imaging Membrane Potential with Two Types of Genetically Encoded Fluorescent Voltage Sensors

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Cited by 5 •

2016

A method for imaging changes in membrane potential using genetically encoded voltage indicators is described.

Voltage-clamp Fluorometry in Xenopus Oocytes Using Fluorescent Unnatural Amino Acids

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Cited by 13 •

2017

This article describes an enhancement of conventional Voltage-Clamp Fluorometry (VCF) where Fluorescent Unnatural Amino Acids (fUAA) are used instead of maleimide dyes, to probe structural rearrangements in ion channels. The procedure includes Xenopus oocyte DNA injection, RNA/fUAA coinjection, and simultaneous current and fluorescence measurements.

Research

JoVE Journal - Biology
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Measuring the Induced Membrane Voltage with Di-8-ANEPPS

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Cited by 48 •

2009

External electric field induces a voltage on the membrane of a cell, termed the induced membrane voltage (ΔΦ). By using the potentiometric dye di-8-ANEPPS, it is possible to measure the ΔΦ noninvasively. This video shows the protocol for measuring ΔΦ using di-8-ANEPPS.

Glutamine Flux Imaging Using Genetically Encoded Sensors

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Cited by 7 •

2014

This article will demonstrate how to monitor glutamine dynamics in live cells using FRET. Genetically encoded sensors allow real-time monitoring of biological molecules at a subcellular resolution. Experimental design, technical details of the experimental settings, and considerations for post-experimental analyses will be discussed for genetically encoded glutamine sensors.

An Aptamer-based Sensor for Unchelated Gadolinium(III)

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2017

The use of polydeoxynucleotide (44-mer aptamer) molecules for sensing unchelated gadolinium(III) ion in an aqueous solution is described. The presence of the ion is detected via an increase in the fluorescence emission of the sensor.

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