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A Neural Sensor with a Nanocomposite Interface for the Study of Spike Characteristics of Hippocampal Neurons under Learning Training

Both the cellular- and population-level properties of involved neurons are essential for unveiling the learning and memory functions of the brain. To give equal attention to these two aspects, neural sensors based on microelectrode arrays (MEAs) have been in the limelight due to their noninvasive de...

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Autores principales: Xu, Shihong, Deng, Yu, Luo, Jinping, Liu, Yaoyao, He, Enhui, Yang, Yan, Zhang, Kui, Sha, Longze, Dai, Yuchun, Ming, Tao, Song, Yilin, Jing, Luyi, Zhuang, Chengyu, Xu, Qi, Cai, Xinxia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9312960/
https://www.ncbi.nlm.nih.gov/pubmed/35884349
http://dx.doi.org/10.3390/bios12070546
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author Xu, Shihong
Deng, Yu
Luo, Jinping
Liu, Yaoyao
He, Enhui
Yang, Yan
Zhang, Kui
Sha, Longze
Dai, Yuchun
Ming, Tao
Song, Yilin
Jing, Luyi
Zhuang, Chengyu
Xu, Qi
Cai, Xinxia
author_facet Xu, Shihong
Deng, Yu
Luo, Jinping
Liu, Yaoyao
He, Enhui
Yang, Yan
Zhang, Kui
Sha, Longze
Dai, Yuchun
Ming, Tao
Song, Yilin
Jing, Luyi
Zhuang, Chengyu
Xu, Qi
Cai, Xinxia
author_sort Xu, Shihong
collection PubMed
description Both the cellular- and population-level properties of involved neurons are essential for unveiling the learning and memory functions of the brain. To give equal attention to these two aspects, neural sensors based on microelectrode arrays (MEAs) have been in the limelight due to their noninvasive detection and regulation capabilities. Here, we fabricated a neural sensor using carboxylated graphene/3,4-ethylenedioxythiophene:polystyrenesulfonate (cGO/PEDOT:PSS), which is effective in sensing and monitoring neuronal electrophysiological activity in vitro for a long time. The cGO/PEDOT:PSS-modified microelectrodes exhibited a lower electrochemical impedance (7.26 ± 0.29 kΩ), higher charge storage capacity (7.53 ± 0.34 mC/cm(2)), and improved charge injection (3.11 ± 0.25 mC/cm(2)). In addition, their performance was maintained after 2 to 4 weeks of long-term cell culture and 50,000 stimulation pulses. During neural network training, the sensors were able to induce learning function in hippocampal neurons through precise electrical stimulation and simultaneously detect changes in neural activity at multiple levels. At the cellular level, not only were three kinds of transient responses to electrical stimulation sensed, but electrical stimulation was also found to affect inhibitory neurons more than excitatory neurons. As for the population level, changes in connectivity and firing synchrony were identified. The cGO/PEDOT:PSS-based neural sensor offers an excellent tool in brain function development and neurological disease treatment.
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spelling pubmed-93129602022-07-26 A Neural Sensor with a Nanocomposite Interface for the Study of Spike Characteristics of Hippocampal Neurons under Learning Training Xu, Shihong Deng, Yu Luo, Jinping Liu, Yaoyao He, Enhui Yang, Yan Zhang, Kui Sha, Longze Dai, Yuchun Ming, Tao Song, Yilin Jing, Luyi Zhuang, Chengyu Xu, Qi Cai, Xinxia Biosensors (Basel) Article Both the cellular- and population-level properties of involved neurons are essential for unveiling the learning and memory functions of the brain. To give equal attention to these two aspects, neural sensors based on microelectrode arrays (MEAs) have been in the limelight due to their noninvasive detection and regulation capabilities. Here, we fabricated a neural sensor using carboxylated graphene/3,4-ethylenedioxythiophene:polystyrenesulfonate (cGO/PEDOT:PSS), which is effective in sensing and monitoring neuronal electrophysiological activity in vitro for a long time. The cGO/PEDOT:PSS-modified microelectrodes exhibited a lower electrochemical impedance (7.26 ± 0.29 kΩ), higher charge storage capacity (7.53 ± 0.34 mC/cm(2)), and improved charge injection (3.11 ± 0.25 mC/cm(2)). In addition, their performance was maintained after 2 to 4 weeks of long-term cell culture and 50,000 stimulation pulses. During neural network training, the sensors were able to induce learning function in hippocampal neurons through precise electrical stimulation and simultaneously detect changes in neural activity at multiple levels. At the cellular level, not only were three kinds of transient responses to electrical stimulation sensed, but electrical stimulation was also found to affect inhibitory neurons more than excitatory neurons. As for the population level, changes in connectivity and firing synchrony were identified. The cGO/PEDOT:PSS-based neural sensor offers an excellent tool in brain function development and neurological disease treatment. MDPI 2022-07-21 /pmc/articles/PMC9312960/ /pubmed/35884349 http://dx.doi.org/10.3390/bios12070546 Text en © 2022 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
Xu, Shihong
Deng, Yu
Luo, Jinping
Liu, Yaoyao
He, Enhui
Yang, Yan
Zhang, Kui
Sha, Longze
Dai, Yuchun
Ming, Tao
Song, Yilin
Jing, Luyi
Zhuang, Chengyu
Xu, Qi
Cai, Xinxia
A Neural Sensor with a Nanocomposite Interface for the Study of Spike Characteristics of Hippocampal Neurons under Learning Training
title A Neural Sensor with a Nanocomposite Interface for the Study of Spike Characteristics of Hippocampal Neurons under Learning Training
title_full A Neural Sensor with a Nanocomposite Interface for the Study of Spike Characteristics of Hippocampal Neurons under Learning Training
title_fullStr A Neural Sensor with a Nanocomposite Interface for the Study of Spike Characteristics of Hippocampal Neurons under Learning Training
title_full_unstemmed A Neural Sensor with a Nanocomposite Interface for the Study of Spike Characteristics of Hippocampal Neurons under Learning Training
title_short A Neural Sensor with a Nanocomposite Interface for the Study of Spike Characteristics of Hippocampal Neurons under Learning Training
title_sort neural sensor with a nanocomposite interface for the study of spike characteristics of hippocampal neurons under learning training
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9312960/
https://www.ncbi.nlm.nih.gov/pubmed/35884349
http://dx.doi.org/10.3390/bios12070546
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