Cargando…

Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain

Transparent microelectrode arrays have emerged as increasingly important tools for neuroscience by allowing simultaneous coupling of big and time-resolved electrophysiology data with optically measured, spatially and type resolved single neuron activity. Scaling down transparent electrodes to the le...

Descripción completa

Detalles Bibliográficos
Autores principales: Qiang, Yi, Artoni, Pietro, Seo, Kyung Jin, Culaclii, Stanislav, Hogan, Victoria, Zhao, Xuanyi, Zhong, Yiding, Han, Xun, Wang, Po-Min, Lo, Yi-Kai, Li, Yueming, Patel, Henil A., Huang, Yifu, Sambangi, Abhijeet, Chu, Jung Soo V., Liu, Wentai, Fagiolini, Michela, Fang, Hui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6124910/
https://www.ncbi.nlm.nih.gov/pubmed/30191176
http://dx.doi.org/10.1126/sciadv.aat0626
_version_ 1783353100412649472
author Qiang, Yi
Artoni, Pietro
Seo, Kyung Jin
Culaclii, Stanislav
Hogan, Victoria
Zhao, Xuanyi
Zhong, Yiding
Han, Xun
Wang, Po-Min
Lo, Yi-Kai
Li, Yueming
Patel, Henil A.
Huang, Yifu
Sambangi, Abhijeet
Chu, Jung Soo V.
Liu, Wentai
Fagiolini, Michela
Fang, Hui
author_facet Qiang, Yi
Artoni, Pietro
Seo, Kyung Jin
Culaclii, Stanislav
Hogan, Victoria
Zhao, Xuanyi
Zhong, Yiding
Han, Xun
Wang, Po-Min
Lo, Yi-Kai
Li, Yueming
Patel, Henil A.
Huang, Yifu
Sambangi, Abhijeet
Chu, Jung Soo V.
Liu, Wentai
Fagiolini, Michela
Fang, Hui
author_sort Qiang, Yi
collection PubMed
description Transparent microelectrode arrays have emerged as increasingly important tools for neuroscience by allowing simultaneous coupling of big and time-resolved electrophysiology data with optically measured, spatially and type resolved single neuron activity. Scaling down transparent electrodes to the length scale of a single neuron is challenging since conventional transparent conductors are limited by their capacitive electrode/electrolyte interface. In this study, we establish transparent microelectrode arrays with high performance, great biocompatibility, and comprehensive in vivo validations from a recently developed, bilayer-nanomesh material composite, where a metal layer and a low-impedance faradaic interfacial layer are stacked reliably together in a same transparent nanomesh pattern. Specifically, flexible arrays from 32 bilayer-nanomesh microelectrodes demonstrated near-unity yield with high uniformity, excellent biocompatibility, and great compatibility with state-of-the-art wireless recording and real-time artifact rejection system. The electrodes are highly scalable, with 130 kilohms at 1 kHz at 20 μm in diameter, comparable to the performance of microelectrodes in nontransparent Michigan arrays. The highly transparent, bilayer-nanomesh microelectrode arrays allowed in vivo two-photon imaging of single neurons in layer 2/3 of the visual cortex of awake mice, along with high-fidelity, simultaneous electrical recordings of visual-evoked activity, both in the multi-unit activity band and at lower frequencies by measuring the visual-evoked potential in the time domain. Together, these advances reveal the great potential of transparent arrays from bilayer-nanomesh microelectrodes for a broad range of utility in neuroscience and medical practices.
format Online
Article
Text
id pubmed-6124910
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher American Association for the Advancement of Science
record_format MEDLINE/PubMed
spelling pubmed-61249102018-09-06 Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain Qiang, Yi Artoni, Pietro Seo, Kyung Jin Culaclii, Stanislav Hogan, Victoria Zhao, Xuanyi Zhong, Yiding Han, Xun Wang, Po-Min Lo, Yi-Kai Li, Yueming Patel, Henil A. Huang, Yifu Sambangi, Abhijeet Chu, Jung Soo V. Liu, Wentai Fagiolini, Michela Fang, Hui Sci Adv Research Articles Transparent microelectrode arrays have emerged as increasingly important tools for neuroscience by allowing simultaneous coupling of big and time-resolved electrophysiology data with optically measured, spatially and type resolved single neuron activity. Scaling down transparent electrodes to the length scale of a single neuron is challenging since conventional transparent conductors are limited by their capacitive electrode/electrolyte interface. In this study, we establish transparent microelectrode arrays with high performance, great biocompatibility, and comprehensive in vivo validations from a recently developed, bilayer-nanomesh material composite, where a metal layer and a low-impedance faradaic interfacial layer are stacked reliably together in a same transparent nanomesh pattern. Specifically, flexible arrays from 32 bilayer-nanomesh microelectrodes demonstrated near-unity yield with high uniformity, excellent biocompatibility, and great compatibility with state-of-the-art wireless recording and real-time artifact rejection system. The electrodes are highly scalable, with 130 kilohms at 1 kHz at 20 μm in diameter, comparable to the performance of microelectrodes in nontransparent Michigan arrays. The highly transparent, bilayer-nanomesh microelectrode arrays allowed in vivo two-photon imaging of single neurons in layer 2/3 of the visual cortex of awake mice, along with high-fidelity, simultaneous electrical recordings of visual-evoked activity, both in the multi-unit activity band and at lower frequencies by measuring the visual-evoked potential in the time domain. Together, these advances reveal the great potential of transparent arrays from bilayer-nanomesh microelectrodes for a broad range of utility in neuroscience and medical practices. American Association for the Advancement of Science 2018-09-05 /pmc/articles/PMC6124910/ /pubmed/30191176 http://dx.doi.org/10.1126/sciadv.aat0626 Text en Copyright © 2018 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC). http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Qiang, Yi
Artoni, Pietro
Seo, Kyung Jin
Culaclii, Stanislav
Hogan, Victoria
Zhao, Xuanyi
Zhong, Yiding
Han, Xun
Wang, Po-Min
Lo, Yi-Kai
Li, Yueming
Patel, Henil A.
Huang, Yifu
Sambangi, Abhijeet
Chu, Jung Soo V.
Liu, Wentai
Fagiolini, Michela
Fang, Hui
Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain
title Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain
title_full Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain
title_fullStr Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain
title_full_unstemmed Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain
title_short Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain
title_sort transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6124910/
https://www.ncbi.nlm.nih.gov/pubmed/30191176
http://dx.doi.org/10.1126/sciadv.aat0626
work_keys_str_mv AT qiangyi transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT artonipietro transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT seokyungjin transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT culacliistanislav transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT hoganvictoria transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT zhaoxuanyi transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT zhongyiding transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT hanxun transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT wangpomin transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT loyikai transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT liyueming transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT patelhenila transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT huangyifu transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT sambangiabhijeet transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT chujungsoov transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT liuwentai transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT fagiolinimichela transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain
AT fanghui transparentarraysofbilayernanomeshmicroelectrodesforsimultaneouselectrophysiologyandtwophotonimaginginthebrain