Comparative performance of a genetically-encoded voltage indicator and a blue voltage sensitive dye for large scale cortical voltage imaging.

PubWeight™: 0.80‹?›

🔗 View Article (PMC 4408844)

Published in Front Cell Neurosci on April 24, 2015

Authors

Hiroki Mutoh1, Yukiko Mishina2, Yasir Gallero-Salas3, Thomas Knöpfel4

Author Affiliations

1: Department of Neurophysiology, Hamamatsu University School of Medicine Hamamatsu, Japan ; Laboratory for Neuronal Circuit Dynamics, RIKEN Brain Science Institute Wako City, Japan.
2: Laboratory for Neuronal Circuit Dynamics, RIKEN Brain Science Institute Wako City, Japan ; Centre for Global Communication Strategies The University of Tokyo, Tokyo Japan.
3: Division of Brain Sciences, Department of Medicine, Imperial College London London, UK.
4: Laboratory for Neuronal Circuit Dynamics, RIKEN Brain Science Institute Wako City, Japan ; Division of Brain Sciences, Department of Medicine, Imperial College London London, UK.

Articles cited by this

Interaction of sensory responses with spontaneous depolarization in layer 2/3 barrel cortex. Proc Natl Acad Sci U S A (2003) 4.57

Spatiotemporal dynamics of cortical sensorimotor integration in behaving mice. Neuron (2007) 4.24

VSDI: a new era in functional imaging of cortical dynamics. Nat Rev Neurosci (2004) 4.24

Improving FRET dynamic range with bright green and red fluorescent proteins. Nat Methods (2012) 3.54

Optical recording of action potentials in mammalian neurons using a microbial rhodopsin. Nat Methods (2011) 3.31

Spatiotemporal dynamics of sensory responses in layer 2/3 of rat barrel cortex measured in vivo by voltage-sensitive dye imaging combined with whole-cell voltage recordings and neuron reconstructions. J Neurosci (2003) 3.04

Imaging brain electric signals with genetically targeted voltage-sensitive fluorescent proteins. Nat Methods (2010) 2.90

Improving membrane voltage measurements using FRET with new fluorescent proteins. Nat Methods (2008) 2.74

Single action potentials and subthreshold electrical events imaged in neurons with a fluorescent protein voltage probe. Neuron (2012) 2.68

Engineering and characterization of an enhanced fluorescent protein voltage sensor. PLoS One (2007) 2.55

Imaging cortical dynamics at high spatial and temporal resolution with novel blue voltage-sensitive dyes. Neuron (1999) 2.53

High-fidelity optical reporting of neuronal electrical activity with an ultrafast fluorescent voltage sensor. Nat Neurosci (2014) 2.53

All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins. Nat Methods (2014) 2.41

Design and characterization of a DNA-encoded, voltage-sensitive fluorescent protein. Eur J Neurosci (2001) 2.36

Engineering of a genetically encodable fluorescent voltage sensor exploiting fast Ci-VSP voltage-sensing movements. PLoS One (2008) 2.01

Transgenic mice for intersectional targeting of neural sensors and effectors with high specificity and performance. Neuron (2015) 1.79

Imaging neural circuit dynamics with a voltage-sensitive fluorescent protein. J Neurophysiol (2012) 1.74

Imaging neural spiking in brain tissue using FRET-opsin protein voltage sensors. Nat Commun (2014) 1.73

Optical probing of neuronal circuit dynamics: genetically encoded versus classical fluorescent sensors. Trends Neurosci (2006) 1.56

Genetically encoded optical indicators for the analysis of neuronal circuits. Nat Rev Neurosci (2012) 1.46

A fluorescent, genetically-encoded voltage probe capable of resolving action potentials. PLoS One (2012) 1.31

Diverse voltage-sensitive dyes modulate GABAA receptor function. J Neurosci (2010) 1.24

Two-photon voltage imaging using a genetically encoded voltage indicator. Sci Rep (2013) 1.20

Bright and fast multicoloured voltage reporters via electrochromic FRET. Nat Commun (2014) 1.18

Exploration of fluorescent protein voltage probes based on circularly permuted fluorescent proteins. Front Neuroeng (2009) 1.15

Fluorescent protein voltage probes derived from ArcLight that respond to membrane voltage changes with fast kinetics. PLoS One (2013) 1.11

Voltage imaging of waking mouse cortex reveals emergence of critical neuronal dynamics. J Neurosci (2014) 1.11

Imaging the awake visual cortex with a genetically encoded voltage indicator. J Neurosci (2015) 1.05

Improved detection of electrical activity with a voltage probe based on a voltage-sensing phosphatase. J Physiol (2013) 1.01

Probing neuronal activities with genetically encoded optical indicators: from a historical to a forward-looking perspective. Pflugers Arch (2012) 0.92

Exploration of genetically encoded voltage indicators based on a chimeric voltage sensing domain. Front Mol Neurosci (2014) 0.91

An evaluation of in vivo voltage-sensitive dyes: pharmacological side effects and signal-to-noise ratios after effective removal of brain-pulsation artifacts. J Neurophysiol (2012) 0.87