Toward Better Genetically Encoded Sensors of Membrane Potential

Authors
Storace, DouglasRad, Masoud SepehriKang, BokEumCohen, Lawrence B.Hughes, ThomBaker, Bradley J.
Issue Date
2016-05
Publisher
ELSEVIER SCIENCE LONDON
Citation
TRENDS IN NEUROSCIENCES, v.39, no.5, pp.277 - 289
Abstract
Genetically encoded optical sensors of cell activity are powerful tools that can be targeted to specific cell types. This is especially important in neuroscience because individual brain regions can include a multitude of different cell types. Optical imaging allows for simultaneous recording from numerous neurons or brain regions. Optical signals of membrane potential are useful because membrane potential changes are a direct sign of both synaptic and action potentials. Here we describe recent improvements in the in vitro and in vivo signal size and kinetics of genetically encoded voltage indicators (GEVIs) and discuss their relationship to alternative sensors of neural activity.
Keywords
NEOCORTICAL PYRAMIDAL NEURONS; FLUORESCENT VOLTAGE SENSOR; DENDRITIC CALCIUM DYNAMICS; PROTEIN VOLTAGE; IN-VIVO; ELECTRICAL-ACTIVITY; OPTICAL ELECTROPHYSIOLOGY; SENSING DOMAIN; INDICATORS; SPIKES; NEOCORTICAL PYRAMIDAL NEURONS; FLUORESCENT VOLTAGE SENSOR; DENDRITIC CALCIUM DYNAMICS; PROTEIN VOLTAGE; IN-VIVO; ELECTRICAL-ACTIVITY; OPTICAL ELECTROPHYSIOLOGY; SENSING DOMAIN; INDICATORS; SPIKES; Ehud Isacoff; Genetically encoded calcium indicators (GECIs); Genetically encoded voltage indicators (GEVIs); Thomas Knopfel
ISSN
0166-2236
URI
https://pubs.kist.re.kr/handle/201004/124107
DOI
10.1016/j.tins.2016.02.005
Appears in Collections:
KIST Article > 2016
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