Optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale LED probe

Optogenetics has proven to be a revolutionary technology in neuroscience and has advanced continuously over the past decade. However, optical stimulation technologies for in vivo need to be developed to match the advances in genetics and biochemistry that have driven this field. In particular, conve...

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Main Authors: Niall eMcAlinden, Erdan eGu, Martin D Dawson, Shuzo eSakata, Keith eMathieson
Format: Article
Language:English
Published: Frontiers Media S.A. 2015-05-01
Series:Frontiers in Neural Circuits
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fncir.2015.00025/full
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spelling doaj-04355d56fdd34ffe8779c1aa19b56bc62020-11-24T23:40:05ZengFrontiers Media S.A.Frontiers in Neural Circuits1662-51102015-05-01910.3389/fncir.2015.00025139584Optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale LED probeNiall eMcAlinden0Erdan eGu1Martin D Dawson2Shuzo eSakata3Shuzo eSakata4Keith eMathieson5University of StrathclydeUniversity of StrathclydeUniversity of StrathclydeUniversity of StrathclydeUniversity of StrathclydeUniversity of StrathclydeOptogenetics has proven to be a revolutionary technology in neuroscience and has advanced continuously over the past decade. However, optical stimulation technologies for in vivo need to be developed to match the advances in genetics and biochemistry that have driven this field. In particular, conventional approaches for in vivo optical illumination have a limitation on the achievable spatio-temporal resolution. Here we utilize a sapphire-based microscale gallium nitride light-emitting diode (µLED) probe to activate neocortical neurons in vivo. The probes were designed to contain independently controllable multiple µLEDs, emitting at 450 nm wavelength with an irradiance of up to 2 W/mm2. Monte-Carlo stimulations predicted that optical stimulation using a µLED can modulate neural activity within a localized region. To validate this prediction, we tested this probe in the mouse neocortex that expressed channelrhodopsin-2 (ChR2) and compared the results with optical stimulation through a fiber at the cortical surface. We confirmed that both approaches reliably induced action potentials in cortical neurons and that the µLED probe evoked strong responses in deep neurons. Due to the possibility to integrate many optical stimulation sites onto a single shank, the µLED probe is thus a promising approach to control neurons locally in vivo.http://journal.frontiersin.org/Journal/10.3389/fncir.2015.00025/fulloptogeneticsneural circuitneurotechnologycortical layersµLEDs
collection DOAJ
language English
format Article
sources DOAJ
author Niall eMcAlinden
Erdan eGu
Martin D Dawson
Shuzo eSakata
Shuzo eSakata
Keith eMathieson
spellingShingle Niall eMcAlinden
Erdan eGu
Martin D Dawson
Shuzo eSakata
Shuzo eSakata
Keith eMathieson
Optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale LED probe
Frontiers in Neural Circuits
optogenetics
neural circuit
neurotechnology
cortical layers
µLEDs
author_facet Niall eMcAlinden
Erdan eGu
Martin D Dawson
Shuzo eSakata
Shuzo eSakata
Keith eMathieson
author_sort Niall eMcAlinden
title Optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale LED probe
title_short Optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale LED probe
title_full Optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale LED probe
title_fullStr Optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale LED probe
title_full_unstemmed Optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale LED probe
title_sort optogenetic activation of neocortical neurons in vivo with a sapphire-based micro-scale led probe
publisher Frontiers Media S.A.
series Frontiers in Neural Circuits
issn 1662-5110
publishDate 2015-05-01
description Optogenetics has proven to be a revolutionary technology in neuroscience and has advanced continuously over the past decade. However, optical stimulation technologies for in vivo need to be developed to match the advances in genetics and biochemistry that have driven this field. In particular, conventional approaches for in vivo optical illumination have a limitation on the achievable spatio-temporal resolution. Here we utilize a sapphire-based microscale gallium nitride light-emitting diode (µLED) probe to activate neocortical neurons in vivo. The probes were designed to contain independently controllable multiple µLEDs, emitting at 450 nm wavelength with an irradiance of up to 2 W/mm2. Monte-Carlo stimulations predicted that optical stimulation using a µLED can modulate neural activity within a localized region. To validate this prediction, we tested this probe in the mouse neocortex that expressed channelrhodopsin-2 (ChR2) and compared the results with optical stimulation through a fiber at the cortical surface. We confirmed that both approaches reliably induced action potentials in cortical neurons and that the µLED probe evoked strong responses in deep neurons. Due to the possibility to integrate many optical stimulation sites onto a single shank, the µLED probe is thus a promising approach to control neurons locally in vivo.
topic optogenetics
neural circuit
neurotechnology
cortical layers
µLEDs
url http://journal.frontiersin.org/Journal/10.3389/fncir.2015.00025/full
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