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Influence of the Surface Material and Illumination upon the Performance of a Microelectrode/Electrolyte Interface in Optogenetics

Integrated optrodes for optogenetics have been becoming a significant tool in neuroscience through the combination of offering accurate stimulation to target cells and recording biological signals simultaneously. This makes it not just be widely used in neuroscience researches, but also have a great...

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Autores principales: Shen, Junyu, Xu, Yanyan, Xiao, Zhengwen, Liu, Yuebo, Liu, Honghui, Wang, Fengge, Yao, Wanqing, Yan, Zhaokun, Zhang, Minjie, Wu, Zhisheng, Liu, Yang, Pun, Sio Hang, Lei, Tim C., Vai, Mang I, Mak, Peng Un, Chen, Changhao, Zhang, Baijun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8471589/
https://www.ncbi.nlm.nih.gov/pubmed/34577704
http://dx.doi.org/10.3390/mi12091061
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author Shen, Junyu
Xu, Yanyan
Xiao, Zhengwen
Liu, Yuebo
Liu, Honghui
Wang, Fengge
Yao, Wanqing
Yan, Zhaokun
Zhang, Minjie
Wu, Zhisheng
Liu, Yang
Pun, Sio Hang
Lei, Tim C.
Vai, Mang I
Mak, Peng Un
Chen, Changhao
Zhang, Baijun
author_facet Shen, Junyu
Xu, Yanyan
Xiao, Zhengwen
Liu, Yuebo
Liu, Honghui
Wang, Fengge
Yao, Wanqing
Yan, Zhaokun
Zhang, Minjie
Wu, Zhisheng
Liu, Yang
Pun, Sio Hang
Lei, Tim C.
Vai, Mang I
Mak, Peng Un
Chen, Changhao
Zhang, Baijun
author_sort Shen, Junyu
collection PubMed
description Integrated optrodes for optogenetics have been becoming a significant tool in neuroscience through the combination of offering accurate stimulation to target cells and recording biological signals simultaneously. This makes it not just be widely used in neuroscience researches, but also have a great potential to be employed in future treatments in clinical neurological diseases. To optimize the integrated optrodes, this paper aimed to investigate the influence of surface material and illumination upon the performance of the microelectrode/electrolyte interface and build a corresponding evaluation system. In this work, an integrated planar optrode with a blue LED and microelectrodes was designed and fabricated. The charge transfer mechanism on the interface was theoretically modeled and experimentally verified. An evaluation system for assessing microelectrodes was also built up. Using this system, the proposed model of various biocompatible surface materials on microelectrodes was further investigated under different illumination conditions. The influence of illumination on the microelectrode/electrolyte interface was the cause of optical artifacts, which interfere the biological signal recording. It was found that surface materials had a great effect on the charge transfer capacity, electrical stability and recoverability, photostability, and especially optical artifacts. The metal with better charge transfer capacity and electrical stability is highly possible to have a better performance on the optical artifacts, regardless of its electrical recoverability and photostability under the illumination conditions of optogenetics. Among the five metals used in our investigation, iridium served as the best surface material for the proposed integrated optrodes. Thus, optimizing the surface material for optrodes could reduce optical interference, enhance the quality of the neural signal recording for optogenetics, and thus help to advance the research in neuroscience.
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spelling pubmed-84715892021-09-28 Influence of the Surface Material and Illumination upon the Performance of a Microelectrode/Electrolyte Interface in Optogenetics Shen, Junyu Xu, Yanyan Xiao, Zhengwen Liu, Yuebo Liu, Honghui Wang, Fengge Yao, Wanqing Yan, Zhaokun Zhang, Minjie Wu, Zhisheng Liu, Yang Pun, Sio Hang Lei, Tim C. Vai, Mang I Mak, Peng Un Chen, Changhao Zhang, Baijun Micromachines (Basel) Article Integrated optrodes for optogenetics have been becoming a significant tool in neuroscience through the combination of offering accurate stimulation to target cells and recording biological signals simultaneously. This makes it not just be widely used in neuroscience researches, but also have a great potential to be employed in future treatments in clinical neurological diseases. To optimize the integrated optrodes, this paper aimed to investigate the influence of surface material and illumination upon the performance of the microelectrode/electrolyte interface and build a corresponding evaluation system. In this work, an integrated planar optrode with a blue LED and microelectrodes was designed and fabricated. The charge transfer mechanism on the interface was theoretically modeled and experimentally verified. An evaluation system for assessing microelectrodes was also built up. Using this system, the proposed model of various biocompatible surface materials on microelectrodes was further investigated under different illumination conditions. The influence of illumination on the microelectrode/electrolyte interface was the cause of optical artifacts, which interfere the biological signal recording. It was found that surface materials had a great effect on the charge transfer capacity, electrical stability and recoverability, photostability, and especially optical artifacts. The metal with better charge transfer capacity and electrical stability is highly possible to have a better performance on the optical artifacts, regardless of its electrical recoverability and photostability under the illumination conditions of optogenetics. Among the five metals used in our investigation, iridium served as the best surface material for the proposed integrated optrodes. Thus, optimizing the surface material for optrodes could reduce optical interference, enhance the quality of the neural signal recording for optogenetics, and thus help to advance the research in neuroscience. MDPI 2021-08-31 /pmc/articles/PMC8471589/ /pubmed/34577704 http://dx.doi.org/10.3390/mi12091061 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shen, Junyu
Xu, Yanyan
Xiao, Zhengwen
Liu, Yuebo
Liu, Honghui
Wang, Fengge
Yao, Wanqing
Yan, Zhaokun
Zhang, Minjie
Wu, Zhisheng
Liu, Yang
Pun, Sio Hang
Lei, Tim C.
Vai, Mang I
Mak, Peng Un
Chen, Changhao
Zhang, Baijun
Influence of the Surface Material and Illumination upon the Performance of a Microelectrode/Electrolyte Interface in Optogenetics
title Influence of the Surface Material and Illumination upon the Performance of a Microelectrode/Electrolyte Interface in Optogenetics
title_full Influence of the Surface Material and Illumination upon the Performance of a Microelectrode/Electrolyte Interface in Optogenetics
title_fullStr Influence of the Surface Material and Illumination upon the Performance of a Microelectrode/Electrolyte Interface in Optogenetics
title_full_unstemmed Influence of the Surface Material and Illumination upon the Performance of a Microelectrode/Electrolyte Interface in Optogenetics
title_short Influence of the Surface Material and Illumination upon the Performance of a Microelectrode/Electrolyte Interface in Optogenetics
title_sort influence of the surface material and illumination upon the performance of a microelectrode/electrolyte interface in optogenetics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8471589/
https://www.ncbi.nlm.nih.gov/pubmed/34577704
http://dx.doi.org/10.3390/mi12091061
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