Precise spatiotemporal control of optogenetic activation using an acousto-optic device.

Light activation and inactivation of neurons by optogenetic techniques has emerged as an important tool for studying neural circuit function. To achieve a high resolution, new methods are being developed to selectively manipulate the activity of individual neurons. Here, we report that the combinati...

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Main Authors: Kaiyu Wang, Yafeng Liu, Yiding Li, Yanmeng Guo, Peipei Song, Xiaohui Zhang, Shaoqun Zeng, Zuoren Wang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3235127?pdf=render
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spelling doaj-b8b36e555a1b4c649cb9e938dbe9f58a2020-11-25T02:31:03ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-01612e2846810.1371/journal.pone.0028468Precise spatiotemporal control of optogenetic activation using an acousto-optic device.Kaiyu WangYafeng LiuYiding LiYanmeng GuoPeipei SongXiaohui ZhangShaoqun ZengZuoren WangLight activation and inactivation of neurons by optogenetic techniques has emerged as an important tool for studying neural circuit function. To achieve a high resolution, new methods are being developed to selectively manipulate the activity of individual neurons. Here, we report that the combination of an acousto-optic device (AOD) and single-photon laser was used to achieve rapid and precise spatiotemporal control of light stimulation at multiple points in a neural circuit with millisecond time resolution. The performance of this system in activating ChIEF expressed on HEK 293 cells as well as cultured neurons was first evaluated, and the laser stimulation patterns were optimized. Next, the spatiotemporally selective manipulation of multiple neurons was achieved in a precise manner. Finally, we demonstrated the versatility of this high-resolution method in dissecting neural circuits both in the mouse cortical slice and the Drosophila brain in vivo. Taken together, our results show that the combination of AOD-assisted laser stimulation and optogenetic tools provides a flexible solution for manipulating neuronal activity at high efficiency and with high temporal precision.http://europepmc.org/articles/PMC3235127?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Kaiyu Wang
Yafeng Liu
Yiding Li
Yanmeng Guo
Peipei Song
Xiaohui Zhang
Shaoqun Zeng
Zuoren Wang
spellingShingle Kaiyu Wang
Yafeng Liu
Yiding Li
Yanmeng Guo
Peipei Song
Xiaohui Zhang
Shaoqun Zeng
Zuoren Wang
Precise spatiotemporal control of optogenetic activation using an acousto-optic device.
PLoS ONE
author_facet Kaiyu Wang
Yafeng Liu
Yiding Li
Yanmeng Guo
Peipei Song
Xiaohui Zhang
Shaoqun Zeng
Zuoren Wang
author_sort Kaiyu Wang
title Precise spatiotemporal control of optogenetic activation using an acousto-optic device.
title_short Precise spatiotemporal control of optogenetic activation using an acousto-optic device.
title_full Precise spatiotemporal control of optogenetic activation using an acousto-optic device.
title_fullStr Precise spatiotemporal control of optogenetic activation using an acousto-optic device.
title_full_unstemmed Precise spatiotemporal control of optogenetic activation using an acousto-optic device.
title_sort precise spatiotemporal control of optogenetic activation using an acousto-optic device.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2011-01-01
description Light activation and inactivation of neurons by optogenetic techniques has emerged as an important tool for studying neural circuit function. To achieve a high resolution, new methods are being developed to selectively manipulate the activity of individual neurons. Here, we report that the combination of an acousto-optic device (AOD) and single-photon laser was used to achieve rapid and precise spatiotemporal control of light stimulation at multiple points in a neural circuit with millisecond time resolution. The performance of this system in activating ChIEF expressed on HEK 293 cells as well as cultured neurons was first evaluated, and the laser stimulation patterns were optimized. Next, the spatiotemporally selective manipulation of multiple neurons was achieved in a precise manner. Finally, we demonstrated the versatility of this high-resolution method in dissecting neural circuits both in the mouse cortical slice and the Drosophila brain in vivo. Taken together, our results show that the combination of AOD-assisted laser stimulation and optogenetic tools provides a flexible solution for manipulating neuronal activity at high efficiency and with high temporal precision.
url http://europepmc.org/articles/PMC3235127?pdf=render
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