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Genetic Modulation at the Neural Microelectrode Interface: Methods and Applications

The use of implanted microelectrode arrays (MEAs), in the brain, has enabled a greater understanding of neural function, and new treatments for neurodegenerative diseases and psychiatric disorders. Glial encapsulation of the device and the loss of neurons at the device-tissue interface are widely be...

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Autores principales: Winter, Bailey M., Daniels, Samuel R., Salatino, Joseph W., Purcell, Erin K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6215262/
https://www.ncbi.nlm.nih.gov/pubmed/30424409
http://dx.doi.org/10.3390/mi9100476
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author Winter, Bailey M.
Daniels, Samuel R.
Salatino, Joseph W.
Purcell, Erin K.
author_facet Winter, Bailey M.
Daniels, Samuel R.
Salatino, Joseph W.
Purcell, Erin K.
author_sort Winter, Bailey M.
collection PubMed
description The use of implanted microelectrode arrays (MEAs), in the brain, has enabled a greater understanding of neural function, and new treatments for neurodegenerative diseases and psychiatric disorders. Glial encapsulation of the device and the loss of neurons at the device-tissue interface are widely believed to reduce recording quality and limit the functional device-lifetime. The integration of microfluidic channels within MEAs enables the perturbation of the cellular pathways, through defined vector delivery. This provides new approaches to shed light on the underlying mechanisms of the reactive response and its contribution to device performance. In chronic settings, however, tissue ingrowth and biofouling can obstruct or damage the channel, preventing vector delivery. In this study, we describe methods of delivering vectors through chronically implanted, single-shank, “Michigan”-style microfluidic devices, 1–3 weeks, post-implantation. We explored and validated three different approaches for modifying gene expression at the device-tissue interface: viral-mediated overexpression, siRNA-enabled knockdown, and cre-dependent conditional expression. We observed a successful delivery of the vectors along the length of the MEA, where the observed expression varied, depending on the depth of the injury. The methods described are intended to enable vector delivery through microfluidic devices for a variety of potential applications; likewise, future design considerations are suggested for further improvements on the approach.
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spelling pubmed-62152622018-11-06 Genetic Modulation at the Neural Microelectrode Interface: Methods and Applications Winter, Bailey M. Daniels, Samuel R. Salatino, Joseph W. Purcell, Erin K. Micromachines (Basel) Communication The use of implanted microelectrode arrays (MEAs), in the brain, has enabled a greater understanding of neural function, and new treatments for neurodegenerative diseases and psychiatric disorders. Glial encapsulation of the device and the loss of neurons at the device-tissue interface are widely believed to reduce recording quality and limit the functional device-lifetime. The integration of microfluidic channels within MEAs enables the perturbation of the cellular pathways, through defined vector delivery. This provides new approaches to shed light on the underlying mechanisms of the reactive response and its contribution to device performance. In chronic settings, however, tissue ingrowth and biofouling can obstruct or damage the channel, preventing vector delivery. In this study, we describe methods of delivering vectors through chronically implanted, single-shank, “Michigan”-style microfluidic devices, 1–3 weeks, post-implantation. We explored and validated three different approaches for modifying gene expression at the device-tissue interface: viral-mediated overexpression, siRNA-enabled knockdown, and cre-dependent conditional expression. We observed a successful delivery of the vectors along the length of the MEA, where the observed expression varied, depending on the depth of the injury. The methods described are intended to enable vector delivery through microfluidic devices for a variety of potential applications; likewise, future design considerations are suggested for further improvements on the approach. MDPI 2018-09-20 /pmc/articles/PMC6215262/ /pubmed/30424409 http://dx.doi.org/10.3390/mi9100476 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Winter, Bailey M.
Daniels, Samuel R.
Salatino, Joseph W.
Purcell, Erin K.
Genetic Modulation at the Neural Microelectrode Interface: Methods and Applications
title Genetic Modulation at the Neural Microelectrode Interface: Methods and Applications
title_full Genetic Modulation at the Neural Microelectrode Interface: Methods and Applications
title_fullStr Genetic Modulation at the Neural Microelectrode Interface: Methods and Applications
title_full_unstemmed Genetic Modulation at the Neural Microelectrode Interface: Methods and Applications
title_short Genetic Modulation at the Neural Microelectrode Interface: Methods and Applications
title_sort genetic modulation at the neural microelectrode interface: methods and applications
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6215262/
https://www.ncbi.nlm.nih.gov/pubmed/30424409
http://dx.doi.org/10.3390/mi9100476
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