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High-Performance Genetically Targetable Optical Neural Silencing via Light-Driven Proton Pumps

The ability to silence the activity of genetically specified neurons in a temporally precise fashion would open up the ability to investigate the causal role of specific cell classes in neural computations, behaviors, and pathologies. Here we show that members of the class of light-driven outward pr...

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Autores principales: Chow, Brian Y., Han, Xue, Dobry, Allison S., Qian, Xiaofeng, Chuong, Amy S., Li, Mingjie, Henninger, Michael A., Belfort, Gabriel M., Lin, Yingxi, Monahan, Patrick E., Boyden, Edward S.
Formato: Texto
Lenguaje:English
Publicado: 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2939492/
https://www.ncbi.nlm.nih.gov/pubmed/20054397
http://dx.doi.org/10.1038/nature08652
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author Chow, Brian Y.
Han, Xue
Dobry, Allison S.
Qian, Xiaofeng
Chuong, Amy S.
Li, Mingjie
Henninger, Michael A.
Belfort, Gabriel M.
Lin, Yingxi
Monahan, Patrick E.
Boyden, Edward S.
author_facet Chow, Brian Y.
Han, Xue
Dobry, Allison S.
Qian, Xiaofeng
Chuong, Amy S.
Li, Mingjie
Henninger, Michael A.
Belfort, Gabriel M.
Lin, Yingxi
Monahan, Patrick E.
Boyden, Edward S.
author_sort Chow, Brian Y.
collection PubMed
description The ability to silence the activity of genetically specified neurons in a temporally precise fashion would open up the ability to investigate the causal role of specific cell classes in neural computations, behaviors, and pathologies. Here we show that members of the class of light-driven outward proton pumps can mediate very powerful, safe, multiple-color silencing of neural activity. The gene archaerhodopsin-31 (Arch) from Halorubrum sodomense enables near-100% silencing of neurons in the awake brain when virally expressed in mouse cortex and illuminated with yellow light. Arch mediates currents of several hundred picoamps at low light powers, and supports neural silencing currents approaching 900 pA at light powers easily achievable in vivo. In addition, Arch spontaneously recovers from light-dependent inactivation, unlike light-driven chloride pumps that enter long-lasting inactive states in response to light. These properties of Arch are appropriate to mediate the optical silencing of significant brain volumes over behaviourally-relevant timescales. Arch function in neurons is well tolerated because pH excursions created by Arch illumination are minimized by self-limiting mechanisms to levels comparable to those mediated by channelrhodopsins2,3 or natural spike firing. To highlight how proton pump ecological and genomic diversity may support new innovation, we show that the blue-green light-drivable proton pump from the fungus Leptosphaeria maculans4 (Mac) can, when expressed in neurons, enable neural silencing by blue light, thus enabling alongside other developed reagents the potential for independent silencing of two neural populations by blue vs. red light. Light-driven proton pumps thus represent a high-performance and extremely versatile class of “optogenetic” voltage and ion modulator, which will broadly empower new neuroscientific, biological, neurological, and psychiatric investigations.
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spelling pubmed-29394922010-09-15 High-Performance Genetically Targetable Optical Neural Silencing via Light-Driven Proton Pumps Chow, Brian Y. Han, Xue Dobry, Allison S. Qian, Xiaofeng Chuong, Amy S. Li, Mingjie Henninger, Michael A. Belfort, Gabriel M. Lin, Yingxi Monahan, Patrick E. Boyden, Edward S. Nature Article The ability to silence the activity of genetically specified neurons in a temporally precise fashion would open up the ability to investigate the causal role of specific cell classes in neural computations, behaviors, and pathologies. Here we show that members of the class of light-driven outward proton pumps can mediate very powerful, safe, multiple-color silencing of neural activity. The gene archaerhodopsin-31 (Arch) from Halorubrum sodomense enables near-100% silencing of neurons in the awake brain when virally expressed in mouse cortex and illuminated with yellow light. Arch mediates currents of several hundred picoamps at low light powers, and supports neural silencing currents approaching 900 pA at light powers easily achievable in vivo. In addition, Arch spontaneously recovers from light-dependent inactivation, unlike light-driven chloride pumps that enter long-lasting inactive states in response to light. These properties of Arch are appropriate to mediate the optical silencing of significant brain volumes over behaviourally-relevant timescales. Arch function in neurons is well tolerated because pH excursions created by Arch illumination are minimized by self-limiting mechanisms to levels comparable to those mediated by channelrhodopsins2,3 or natural spike firing. To highlight how proton pump ecological and genomic diversity may support new innovation, we show that the blue-green light-drivable proton pump from the fungus Leptosphaeria maculans4 (Mac) can, when expressed in neurons, enable neural silencing by blue light, thus enabling alongside other developed reagents the potential for independent silencing of two neural populations by blue vs. red light. Light-driven proton pumps thus represent a high-performance and extremely versatile class of “optogenetic” voltage and ion modulator, which will broadly empower new neuroscientific, biological, neurological, and psychiatric investigations. 2010-01-07 /pmc/articles/PMC2939492/ /pubmed/20054397 http://dx.doi.org/10.1038/nature08652 Text en Users may view, print, copy, download and 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
Chow, Brian Y.
Han, Xue
Dobry, Allison S.
Qian, Xiaofeng
Chuong, Amy S.
Li, Mingjie
Henninger, Michael A.
Belfort, Gabriel M.
Lin, Yingxi
Monahan, Patrick E.
Boyden, Edward S.
High-Performance Genetically Targetable Optical Neural Silencing via Light-Driven Proton Pumps
title High-Performance Genetically Targetable Optical Neural Silencing via Light-Driven Proton Pumps
title_full High-Performance Genetically Targetable Optical Neural Silencing via Light-Driven Proton Pumps
title_fullStr High-Performance Genetically Targetable Optical Neural Silencing via Light-Driven Proton Pumps
title_full_unstemmed High-Performance Genetically Targetable Optical Neural Silencing via Light-Driven Proton Pumps
title_short High-Performance Genetically Targetable Optical Neural Silencing via Light-Driven Proton Pumps
title_sort high-performance genetically targetable optical neural silencing via light-driven proton pumps
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2939492/
https://www.ncbi.nlm.nih.gov/pubmed/20054397
http://dx.doi.org/10.1038/nature08652
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