Cargando…

Feasibility of Nitrogen Doped Ultrananocrystalline Diamond Microelectrodes for Electrophysiological Recording From Neural Tissue

Neural prostheses that can monitor the physiological state of a subject are becoming clinically viable through improvements in the capacity to record from neural tissue. However, a significant limitation of current devices is that it is difficult to fabricate electrode arrays that have both high cha...

Descripción completa

Detalles Bibliográficos
Autores principales: Wong, Yan T., Ahnood, Arman, Maturana, Matias I., Kentler, William, Ganesan, Kumaravelu, Grayden, David B., Meffin, Hamish, Prawer, Steven, Ibbotson, Michael R., Burkitt, Anthony N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6024013/
https://www.ncbi.nlm.nih.gov/pubmed/29988378
http://dx.doi.org/10.3389/fbioe.2018.00085
_version_ 1783335975133380608
author Wong, Yan T.
Ahnood, Arman
Maturana, Matias I.
Kentler, William
Ganesan, Kumaravelu
Grayden, David B.
Meffin, Hamish
Prawer, Steven
Ibbotson, Michael R.
Burkitt, Anthony N.
author_facet Wong, Yan T.
Ahnood, Arman
Maturana, Matias I.
Kentler, William
Ganesan, Kumaravelu
Grayden, David B.
Meffin, Hamish
Prawer, Steven
Ibbotson, Michael R.
Burkitt, Anthony N.
author_sort Wong, Yan T.
collection PubMed
description Neural prostheses that can monitor the physiological state of a subject are becoming clinically viable through improvements in the capacity to record from neural tissue. However, a significant limitation of current devices is that it is difficult to fabricate electrode arrays that have both high channel counts and the appropriate electrical properties required for neural recordings. In earlier work, we demonstrated nitrogen doped ultrananocrystalline diamond (N-UNCD) can provide efficacious electrical stimulation of neural tissue, with high charge injection capacity, surface stability and biocompatibility. In this work, we expand on this functionality to show that N-UNCD electrodes can also record from neural tissue owing to its low electrochemical impedance. We show that N-UNCD electrodes are highly flexible in their application, with successful recordings of action potentials from single neurons in an in vitro retina preparation, as well as local field potential responses from in vivo visual cortex tissue. Key properties of N-UNCD films, combined with scalability of electrode array fabrication with custom sizes for recording or stimulation along with integration through vertical interconnects to silicon based integrated circuits, may in future form the basis for the fabrication of versatile closed-loop neural prostheses that can both record and stimulate.
format Online
Article
Text
id pubmed-6024013
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-60240132018-07-09 Feasibility of Nitrogen Doped Ultrananocrystalline Diamond Microelectrodes for Electrophysiological Recording From Neural Tissue Wong, Yan T. Ahnood, Arman Maturana, Matias I. Kentler, William Ganesan, Kumaravelu Grayden, David B. Meffin, Hamish Prawer, Steven Ibbotson, Michael R. Burkitt, Anthony N. Front Bioeng Biotechnol Bioengineering and Biotechnology Neural prostheses that can monitor the physiological state of a subject are becoming clinically viable through improvements in the capacity to record from neural tissue. However, a significant limitation of current devices is that it is difficult to fabricate electrode arrays that have both high channel counts and the appropriate electrical properties required for neural recordings. In earlier work, we demonstrated nitrogen doped ultrananocrystalline diamond (N-UNCD) can provide efficacious electrical stimulation of neural tissue, with high charge injection capacity, surface stability and biocompatibility. In this work, we expand on this functionality to show that N-UNCD electrodes can also record from neural tissue owing to its low electrochemical impedance. We show that N-UNCD electrodes are highly flexible in their application, with successful recordings of action potentials from single neurons in an in vitro retina preparation, as well as local field potential responses from in vivo visual cortex tissue. Key properties of N-UNCD films, combined with scalability of electrode array fabrication with custom sizes for recording or stimulation along with integration through vertical interconnects to silicon based integrated circuits, may in future form the basis for the fabrication of versatile closed-loop neural prostheses that can both record and stimulate. Frontiers Media S.A. 2018-06-22 /pmc/articles/PMC6024013/ /pubmed/29988378 http://dx.doi.org/10.3389/fbioe.2018.00085 Text en Copyright © 2018 Wong, Ahnood, Maturana, Kentler, Ganesan, Grayden, Meffin, Prawer, Ibbotson and Burkitt. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Bioengineering and Biotechnology
Wong, Yan T.
Ahnood, Arman
Maturana, Matias I.
Kentler, William
Ganesan, Kumaravelu
Grayden, David B.
Meffin, Hamish
Prawer, Steven
Ibbotson, Michael R.
Burkitt, Anthony N.
Feasibility of Nitrogen Doped Ultrananocrystalline Diamond Microelectrodes for Electrophysiological Recording From Neural Tissue
title Feasibility of Nitrogen Doped Ultrananocrystalline Diamond Microelectrodes for Electrophysiological Recording From Neural Tissue
title_full Feasibility of Nitrogen Doped Ultrananocrystalline Diamond Microelectrodes for Electrophysiological Recording From Neural Tissue
title_fullStr Feasibility of Nitrogen Doped Ultrananocrystalline Diamond Microelectrodes for Electrophysiological Recording From Neural Tissue
title_full_unstemmed Feasibility of Nitrogen Doped Ultrananocrystalline Diamond Microelectrodes for Electrophysiological Recording From Neural Tissue
title_short Feasibility of Nitrogen Doped Ultrananocrystalline Diamond Microelectrodes for Electrophysiological Recording From Neural Tissue
title_sort feasibility of nitrogen doped ultrananocrystalline diamond microelectrodes for electrophysiological recording from neural tissue
topic Bioengineering and Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6024013/
https://www.ncbi.nlm.nih.gov/pubmed/29988378
http://dx.doi.org/10.3389/fbioe.2018.00085
work_keys_str_mv AT wongyant feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT ahnoodarman feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT maturanamatiasi feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT kentlerwilliam feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT ganesankumaravelu feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT graydendavidb feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT meffinhamish feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT prawersteven feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT ibbotsonmichaelr feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue
AT burkittanthonyn feasibilityofnitrogendopedultrananocrystallinediamondmicroelectrodesforelectrophysiologicalrecordingfromneuraltissue