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All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins

All-optical electrophysiology—spatially resolved simultaneous optical perturbation and measurement of membrane voltage—would open new vistas in neuroscience research. We evolved two archaerhodopsin-based voltage indicators, QuasAr1 and 2, which show improved brightness and voltage sensitivity, micro...

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Autores principales: Hochbaum, Daniel R., Zhao, Yongxin, Farhi, Samouil L., Klapoetke, Nathan, Werley, Christopher A., Kapoor, Vikrant, Zou, Peng, Kralj, Joel M., Maclaurin, Dougal, Smedemark-Margulies, Niklas, Saulnier, Jessica L., Boulting, Gabriella L., Straub, Christoph, Cho, Yong Ku, Melkonian, Michael, Wong, Gane Ka-Shu, Harrison, D. Jed, Murthy, Venkatesh N., Sabatini, Bernardo, Boyden, Edward S., Campbell, Robert E., Cohen, Adam E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4117813/
https://www.ncbi.nlm.nih.gov/pubmed/24952910
http://dx.doi.org/10.1038/nmeth.3000
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author Hochbaum, Daniel R.
Zhao, Yongxin
Farhi, Samouil L.
Klapoetke, Nathan
Werley, Christopher A.
Kapoor, Vikrant
Zou, Peng
Kralj, Joel M.
Maclaurin, Dougal
Smedemark-Margulies, Niklas
Saulnier, Jessica L.
Boulting, Gabriella L.
Straub, Christoph
Cho, Yong Ku
Melkonian, Michael
Wong, Gane Ka-Shu
Harrison, D. Jed
Murthy, Venkatesh N.
Sabatini, Bernardo
Boyden, Edward S.
Campbell, Robert E.
Cohen, Adam E.
author_facet Hochbaum, Daniel R.
Zhao, Yongxin
Farhi, Samouil L.
Klapoetke, Nathan
Werley, Christopher A.
Kapoor, Vikrant
Zou, Peng
Kralj, Joel M.
Maclaurin, Dougal
Smedemark-Margulies, Niklas
Saulnier, Jessica L.
Boulting, Gabriella L.
Straub, Christoph
Cho, Yong Ku
Melkonian, Michael
Wong, Gane Ka-Shu
Harrison, D. Jed
Murthy, Venkatesh N.
Sabatini, Bernardo
Boyden, Edward S.
Campbell, Robert E.
Cohen, Adam E.
author_sort Hochbaum, Daniel R.
collection PubMed
description All-optical electrophysiology—spatially resolved simultaneous optical perturbation and measurement of membrane voltage—would open new vistas in neuroscience research. We evolved two archaerhodopsin-based voltage indicators, QuasAr1 and 2, which show improved brightness and voltage sensitivity, microsecond response times, and produce no photocurrent. We engineered a novel channelrhodopsin actuator, CheRiff, which shows improved light sensitivity and kinetics, and spectral orthogonality to the QuasArs. A co-expression vector, Optopatch, enabled crosstalk-free genetically targeted all-optical electrophysiology. In cultured neurons, we combined Optopatch with patterned optical excitation to probe back-propagating action potentials in dendritic spines, synaptic transmission, sub-cellular microsecond-timescale details of action potential propagation, and simultaneous firing of many neurons in a network. Optopatch measurements revealed homeostatic tuning of intrinsic excitability in human stem cell-derived neurons. In brain slice, Optopatch induced and reported action potentials and subthreshold events, with high signal-to-noise ratios. The Optopatch platform enables high-throughput, spatially resolved electrophysiology without use of conventional electrodes.
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spelling pubmed-41178132015-02-01 All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins Hochbaum, Daniel R. Zhao, Yongxin Farhi, Samouil L. Klapoetke, Nathan Werley, Christopher A. Kapoor, Vikrant Zou, Peng Kralj, Joel M. Maclaurin, Dougal Smedemark-Margulies, Niklas Saulnier, Jessica L. Boulting, Gabriella L. Straub, Christoph Cho, Yong Ku Melkonian, Michael Wong, Gane Ka-Shu Harrison, D. Jed Murthy, Venkatesh N. Sabatini, Bernardo Boyden, Edward S. Campbell, Robert E. Cohen, Adam E. Nat Methods Article All-optical electrophysiology—spatially resolved simultaneous optical perturbation and measurement of membrane voltage—would open new vistas in neuroscience research. We evolved two archaerhodopsin-based voltage indicators, QuasAr1 and 2, which show improved brightness and voltage sensitivity, microsecond response times, and produce no photocurrent. We engineered a novel channelrhodopsin actuator, CheRiff, which shows improved light sensitivity and kinetics, and spectral orthogonality to the QuasArs. A co-expression vector, Optopatch, enabled crosstalk-free genetically targeted all-optical electrophysiology. In cultured neurons, we combined Optopatch with patterned optical excitation to probe back-propagating action potentials in dendritic spines, synaptic transmission, sub-cellular microsecond-timescale details of action potential propagation, and simultaneous firing of many neurons in a network. Optopatch measurements revealed homeostatic tuning of intrinsic excitability in human stem cell-derived neurons. In brain slice, Optopatch induced and reported action potentials and subthreshold events, with high signal-to-noise ratios. The Optopatch platform enables high-throughput, spatially resolved electrophysiology without use of conventional electrodes. 2014-06-22 2014-08 /pmc/articles/PMC4117813/ /pubmed/24952910 http://dx.doi.org/10.1038/nmeth.3000 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Hochbaum, Daniel R.
Zhao, Yongxin
Farhi, Samouil L.
Klapoetke, Nathan
Werley, Christopher A.
Kapoor, Vikrant
Zou, Peng
Kralj, Joel M.
Maclaurin, Dougal
Smedemark-Margulies, Niklas
Saulnier, Jessica L.
Boulting, Gabriella L.
Straub, Christoph
Cho, Yong Ku
Melkonian, Michael
Wong, Gane Ka-Shu
Harrison, D. Jed
Murthy, Venkatesh N.
Sabatini, Bernardo
Boyden, Edward S.
Campbell, Robert E.
Cohen, Adam E.
All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins
title All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins
title_full All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins
title_fullStr All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins
title_full_unstemmed All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins
title_short All-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins
title_sort all-optical electrophysiology in mammalian neurons using engineered microbial rhodopsins
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4117813/
https://www.ncbi.nlm.nih.gov/pubmed/24952910
http://dx.doi.org/10.1038/nmeth.3000
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