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Flexible, Foldable, Actively Multiplexed, High-Density Electrode Array for Mapping Brain Activity in vivo

Arrays of electrodes for recording and stimulating the brain are used throughout clinical medicine and basic neuroscience research, yet are unable to sample large areas of the brain while maintaining high spatial resolution because of the need to individually wire each passive sensor at the electrod...

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Autores principales: Viventi, Jonathan, Kim, Dae-Hyeong, Vigeland, Leif, Frechette, Eric S., Blanco, Justin A., Kim, Yun-Soung, Avrin, Andrew E., Tiruvadi, Vineet R., Hwang, Suk-Won, Vanleer, Ann C., Wulsin, Drausin F., Davis, Kathryn, Gelber, Casey E., Palmer, Larry, Van der Spiegel, Jan, Wu, Jian, Xiao, Jianliang, Huang, Yonggang, Contreras, Diego, Rogers, John A., Litt, Brian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3235709/
https://www.ncbi.nlm.nih.gov/pubmed/22081157
http://dx.doi.org/10.1038/nn.2973
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author Viventi, Jonathan
Kim, Dae-Hyeong
Vigeland, Leif
Frechette, Eric S.
Blanco, Justin A.
Kim, Yun-Soung
Avrin, Andrew E.
Tiruvadi, Vineet R.
Hwang, Suk-Won
Vanleer, Ann C.
Wulsin, Drausin F.
Davis, Kathryn
Gelber, Casey E.
Palmer, Larry
Van der Spiegel, Jan
Wu, Jian
Xiao, Jianliang
Huang, Yonggang
Contreras, Diego
Rogers, John A.
Litt, Brian
author_facet Viventi, Jonathan
Kim, Dae-Hyeong
Vigeland, Leif
Frechette, Eric S.
Blanco, Justin A.
Kim, Yun-Soung
Avrin, Andrew E.
Tiruvadi, Vineet R.
Hwang, Suk-Won
Vanleer, Ann C.
Wulsin, Drausin F.
Davis, Kathryn
Gelber, Casey E.
Palmer, Larry
Van der Spiegel, Jan
Wu, Jian
Xiao, Jianliang
Huang, Yonggang
Contreras, Diego
Rogers, John A.
Litt, Brian
author_sort Viventi, Jonathan
collection PubMed
description Arrays of electrodes for recording and stimulating the brain are used throughout clinical medicine and basic neuroscience research, yet are unable to sample large areas of the brain while maintaining high spatial resolution because of the need to individually wire each passive sensor at the electrode-tissue interface. To overcome this constraint, we have developed new devices integrating ultrathin and flexible silicon nanomembrane transistors into the electrode array, enabling new dense arrays of thousands of amplified and multiplexed sensors connected using many fewer wires. We used this system to record novel spatial properties of brain activity in vivo, including sleep spindles, single-trial visual evoked responses, and electrographic seizures. Our electrode array allowed us to discover that seizures may manifest as recurrent spiral waves which propagate in the neocortex. The developments reported here herald a new generation of diagnostic and therapeutic brain-machine interface (BMI) devices.
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spelling pubmed-32357092012-06-01 Flexible, Foldable, Actively Multiplexed, High-Density Electrode Array for Mapping Brain Activity in vivo Viventi, Jonathan Kim, Dae-Hyeong Vigeland, Leif Frechette, Eric S. Blanco, Justin A. Kim, Yun-Soung Avrin, Andrew E. Tiruvadi, Vineet R. Hwang, Suk-Won Vanleer, Ann C. Wulsin, Drausin F. Davis, Kathryn Gelber, Casey E. Palmer, Larry Van der Spiegel, Jan Wu, Jian Xiao, Jianliang Huang, Yonggang Contreras, Diego Rogers, John A. Litt, Brian Nat Neurosci Article Arrays of electrodes for recording and stimulating the brain are used throughout clinical medicine and basic neuroscience research, yet are unable to sample large areas of the brain while maintaining high spatial resolution because of the need to individually wire each passive sensor at the electrode-tissue interface. To overcome this constraint, we have developed new devices integrating ultrathin and flexible silicon nanomembrane transistors into the electrode array, enabling new dense arrays of thousands of amplified and multiplexed sensors connected using many fewer wires. We used this system to record novel spatial properties of brain activity in vivo, including sleep spindles, single-trial visual evoked responses, and electrographic seizures. Our electrode array allowed us to discover that seizures may manifest as recurrent spiral waves which propagate in the neocortex. The developments reported here herald a new generation of diagnostic and therapeutic brain-machine interface (BMI) devices. 2011-11-13 /pmc/articles/PMC3235709/ /pubmed/22081157 http://dx.doi.org/10.1038/nn.2973 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Viventi, Jonathan
Kim, Dae-Hyeong
Vigeland, Leif
Frechette, Eric S.
Blanco, Justin A.
Kim, Yun-Soung
Avrin, Andrew E.
Tiruvadi, Vineet R.
Hwang, Suk-Won
Vanleer, Ann C.
Wulsin, Drausin F.
Davis, Kathryn
Gelber, Casey E.
Palmer, Larry
Van der Spiegel, Jan
Wu, Jian
Xiao, Jianliang
Huang, Yonggang
Contreras, Diego
Rogers, John A.
Litt, Brian
Flexible, Foldable, Actively Multiplexed, High-Density Electrode Array for Mapping Brain Activity in vivo
title Flexible, Foldable, Actively Multiplexed, High-Density Electrode Array for Mapping Brain Activity in vivo
title_full Flexible, Foldable, Actively Multiplexed, High-Density Electrode Array for Mapping Brain Activity in vivo
title_fullStr Flexible, Foldable, Actively Multiplexed, High-Density Electrode Array for Mapping Brain Activity in vivo
title_full_unstemmed Flexible, Foldable, Actively Multiplexed, High-Density Electrode Array for Mapping Brain Activity in vivo
title_short Flexible, Foldable, Actively Multiplexed, High-Density Electrode Array for Mapping Brain Activity in vivo
title_sort flexible, foldable, actively multiplexed, high-density electrode array for mapping brain activity in vivo
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3235709/
https://www.ncbi.nlm.nih.gov/pubmed/22081157
http://dx.doi.org/10.1038/nn.2973
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