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In Vivo Optogenetic Modulation with Simultaneous Neural Detection Using Microelectrode Array Integrated with Optical Fiber

The detection of neuroelectrophysiology while performing optogenetic modulation can provide more reliable and useful information for neural research. In this study, an optical fiber and a microelectrode array were integrated through hot-melt adhesive bonding, which combined optogenetics and electrop...

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Autores principales: Fan, Penghui, Song, Yilin, Xu, Shengwei, Dai, Yuchuan, Wang, Yiding, Lu, Botao, Xie, Jingyu, Wang, Hao, Cai, Xinxia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7472634/
https://www.ncbi.nlm.nih.gov/pubmed/32823521
http://dx.doi.org/10.3390/s20164526
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author Fan, Penghui
Song, Yilin
Xu, Shengwei
Dai, Yuchuan
Wang, Yiding
Lu, Botao
Xie, Jingyu
Wang, Hao
Cai, Xinxia
author_facet Fan, Penghui
Song, Yilin
Xu, Shengwei
Dai, Yuchuan
Wang, Yiding
Lu, Botao
Xie, Jingyu
Wang, Hao
Cai, Xinxia
author_sort Fan, Penghui
collection PubMed
description The detection of neuroelectrophysiology while performing optogenetic modulation can provide more reliable and useful information for neural research. In this study, an optical fiber and a microelectrode array were integrated through hot-melt adhesive bonding, which combined optogenetics and electrophysiological detection technology to achieve neuromodulation and neuronal activity recording. We carried out the experiments on the activation and electrophysiological detection of infected neurons at the depth range of 900–1250 μm in the brain which covers hippocampal CA1 and a part of the upper cortical area, analyzed a possible local inhibition circuit by combining opotogenetic modulation and electrophysiological characteristics and explored the effects of different optical patterns and light powers on the neuromodulation. It was found that optogenetics, combined with neural recording technology, could provide more information and ideas for neural circuit recognition. In this study, the optical stimulation with low frequency and large duty cycle induces more intense neuronal activity and larger light power induced more action potentials of neurons within a certain power range (1.032 mW–1.584 mW). The present study provided an efficient method for the detection and modulation of neurons in vivo and an effective tool to study neural circuit in the brain.
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spelling pubmed-74726342020-09-17 In Vivo Optogenetic Modulation with Simultaneous Neural Detection Using Microelectrode Array Integrated with Optical Fiber Fan, Penghui Song, Yilin Xu, Shengwei Dai, Yuchuan Wang, Yiding Lu, Botao Xie, Jingyu Wang, Hao Cai, Xinxia Sensors (Basel) Article The detection of neuroelectrophysiology while performing optogenetic modulation can provide more reliable and useful information for neural research. In this study, an optical fiber and a microelectrode array were integrated through hot-melt adhesive bonding, which combined optogenetics and electrophysiological detection technology to achieve neuromodulation and neuronal activity recording. We carried out the experiments on the activation and electrophysiological detection of infected neurons at the depth range of 900–1250 μm in the brain which covers hippocampal CA1 and a part of the upper cortical area, analyzed a possible local inhibition circuit by combining opotogenetic modulation and electrophysiological characteristics and explored the effects of different optical patterns and light powers on the neuromodulation. It was found that optogenetics, combined with neural recording technology, could provide more information and ideas for neural circuit recognition. In this study, the optical stimulation with low frequency and large duty cycle induces more intense neuronal activity and larger light power induced more action potentials of neurons within a certain power range (1.032 mW–1.584 mW). The present study provided an efficient method for the detection and modulation of neurons in vivo and an effective tool to study neural circuit in the brain. MDPI 2020-08-13 /pmc/articles/PMC7472634/ /pubmed/32823521 http://dx.doi.org/10.3390/s20164526 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fan, Penghui
Song, Yilin
Xu, Shengwei
Dai, Yuchuan
Wang, Yiding
Lu, Botao
Xie, Jingyu
Wang, Hao
Cai, Xinxia
In Vivo Optogenetic Modulation with Simultaneous Neural Detection Using Microelectrode Array Integrated with Optical Fiber
title In Vivo Optogenetic Modulation with Simultaneous Neural Detection Using Microelectrode Array Integrated with Optical Fiber
title_full In Vivo Optogenetic Modulation with Simultaneous Neural Detection Using Microelectrode Array Integrated with Optical Fiber
title_fullStr In Vivo Optogenetic Modulation with Simultaneous Neural Detection Using Microelectrode Array Integrated with Optical Fiber
title_full_unstemmed In Vivo Optogenetic Modulation with Simultaneous Neural Detection Using Microelectrode Array Integrated with Optical Fiber
title_short In Vivo Optogenetic Modulation with Simultaneous Neural Detection Using Microelectrode Array Integrated with Optical Fiber
title_sort in vivo optogenetic modulation with simultaneous neural detection using microelectrode array integrated with optical fiber
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7472634/
https://www.ncbi.nlm.nih.gov/pubmed/32823521
http://dx.doi.org/10.3390/s20164526
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