Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.

Intracranial electrodes are a vital component of implantable neurodevices, both for acute diagnostics and chronic treatment with open and closed-loop neuromodulation. Their performance is hampered by acute implantation trauma and chronic inflammation in response to implanted materials and mechanical...

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Main Authors: Flavia Vitale, Wendy Shen, Nicolette Driscoll, Justin C Burrell, Andrew G Richardson, Oladayo Adewole, Brendan Murphy, Akshay Ananthakrishnan, Hanju Oh, Theodore Wang, Timothy H Lucas, D Kacy Cullen, Mark G Allen, Brian Litt
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC6211660?pdf=render
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spelling doaj-fbb42ab8eba748009a9be9eba21104d22020-11-25T02:01:09ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-011311e020613710.1371/journal.pone.0206137Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.Flavia VitaleWendy ShenNicolette DriscollJustin C BurrellAndrew G RichardsonOladayo AdewoleBrendan MurphyAkshay AnanthakrishnanHanju OhTheodore WangTimothy H LucasD Kacy CullenMark G AllenBrian LittIntracranial electrodes are a vital component of implantable neurodevices, both for acute diagnostics and chronic treatment with open and closed-loop neuromodulation. Their performance is hampered by acute implantation trauma and chronic inflammation in response to implanted materials and mechanical mismatch between stiff synthetic electrodes and pulsating, natural soft host neural tissue. Flexible electronics based on thin polymer films patterned with microscale conductive features can help alleviate the mechanically induced trauma; however, this strategy alone does not mitigate inflammation at the device-tissue interface. In this study, we propose a biomimetic approach that integrates microscale extracellular matrix (ECM) coatings on microfabricated flexible subdural microelectrodes. Taking advantage of a high-throughput process employing micro-transfer molding and excimer laser micromachining, we fabricate multi-channel subdural microelectrodes primarily composed of ECM protein material and demonstrate that the electrochemical and mechanical properties match those of standard, uncoated controls. In vivo ECoG recordings in rodent brain confirm that the ECM microelectrode coatings and the protein interface do not alter signal fidelity. Astrogliotic, foreign body reaction to ECM coated devices is reduced, compared to uncoated controls, at 7 and 30 days, after subdural implantation in rat somatosensory cortex. We propose microfabricated, flexible, biomimetic electrodes as a new strategy to reduce inflammation at the device-tissue interface and improve the long-term stability of implantable subdural electrodes.http://europepmc.org/articles/PMC6211660?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Flavia Vitale
Wendy Shen
Nicolette Driscoll
Justin C Burrell
Andrew G Richardson
Oladayo Adewole
Brendan Murphy
Akshay Ananthakrishnan
Hanju Oh
Theodore Wang
Timothy H Lucas
D Kacy Cullen
Mark G Allen
Brian Litt
spellingShingle Flavia Vitale
Wendy Shen
Nicolette Driscoll
Justin C Burrell
Andrew G Richardson
Oladayo Adewole
Brendan Murphy
Akshay Ananthakrishnan
Hanju Oh
Theodore Wang
Timothy H Lucas
D Kacy Cullen
Mark G Allen
Brian Litt
Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.
PLoS ONE
author_facet Flavia Vitale
Wendy Shen
Nicolette Driscoll
Justin C Burrell
Andrew G Richardson
Oladayo Adewole
Brendan Murphy
Akshay Ananthakrishnan
Hanju Oh
Theodore Wang
Timothy H Lucas
D Kacy Cullen
Mark G Allen
Brian Litt
author_sort Flavia Vitale
title Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.
title_short Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.
title_full Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.
title_fullStr Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.
title_full_unstemmed Biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.
title_sort biomimetic extracellular matrix coatings improve the chronic biocompatibility of microfabricated subdural microelectrode arrays.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2018-01-01
description Intracranial electrodes are a vital component of implantable neurodevices, both for acute diagnostics and chronic treatment with open and closed-loop neuromodulation. Their performance is hampered by acute implantation trauma and chronic inflammation in response to implanted materials and mechanical mismatch between stiff synthetic electrodes and pulsating, natural soft host neural tissue. Flexible electronics based on thin polymer films patterned with microscale conductive features can help alleviate the mechanically induced trauma; however, this strategy alone does not mitigate inflammation at the device-tissue interface. In this study, we propose a biomimetic approach that integrates microscale extracellular matrix (ECM) coatings on microfabricated flexible subdural microelectrodes. Taking advantage of a high-throughput process employing micro-transfer molding and excimer laser micromachining, we fabricate multi-channel subdural microelectrodes primarily composed of ECM protein material and demonstrate that the electrochemical and mechanical properties match those of standard, uncoated controls. In vivo ECoG recordings in rodent brain confirm that the ECM microelectrode coatings and the protein interface do not alter signal fidelity. Astrogliotic, foreign body reaction to ECM coated devices is reduced, compared to uncoated controls, at 7 and 30 days, after subdural implantation in rat somatosensory cortex. We propose microfabricated, flexible, biomimetic electrodes as a new strategy to reduce inflammation at the device-tissue interface and improve the long-term stability of implantable subdural electrodes.
url http://europepmc.org/articles/PMC6211660?pdf=render
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