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A tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy

Focused ultrasound (FUS) is a powerful tool for noninvasive modulation of deep brain activity with promising therapeutic potential for refractory epilepsy; however, tools for examining FUS effects on specific cell types within the deep brain do not yet exist. Consequently, how cell types within hete...

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Autores principales: Murphy, Keith R., Farrell, Jordan S., Gomez, Juan L., Stedman, Quintin G., Li, Ningrui, Leung, Steven A., Good, Cameron H., Qiu, Zhihai, Firouzi, Kamyar, Butts Pauly, Kim, Khuri-Yakub, Butrus Pierre T., Michaelides, Michael, Soltesz, Ivan, de Lecea, Luis
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9674244/
https://www.ncbi.nlm.nih.gov/pubmed/36343238
http://dx.doi.org/10.1073/pnas.2206828119
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author Murphy, Keith R.
Farrell, Jordan S.
Gomez, Juan L.
Stedman, Quintin G.
Li, Ningrui
Leung, Steven A.
Good, Cameron H.
Qiu, Zhihai
Firouzi, Kamyar
Butts Pauly, Kim
Khuri-Yakub, Butrus Pierre T.
Michaelides, Michael
Soltesz, Ivan
de Lecea, Luis
author_facet Murphy, Keith R.
Farrell, Jordan S.
Gomez, Juan L.
Stedman, Quintin G.
Li, Ningrui
Leung, Steven A.
Good, Cameron H.
Qiu, Zhihai
Firouzi, Kamyar
Butts Pauly, Kim
Khuri-Yakub, Butrus Pierre T.
Michaelides, Michael
Soltesz, Ivan
de Lecea, Luis
author_sort Murphy, Keith R.
collection PubMed
description Focused ultrasound (FUS) is a powerful tool for noninvasive modulation of deep brain activity with promising therapeutic potential for refractory epilepsy; however, tools for examining FUS effects on specific cell types within the deep brain do not yet exist. Consequently, how cell types within heterogeneous networks can be modulated and whether parameters can be identified to bias these networks in the context of complex behaviors remains unknown. To address this, we developed a fiber Photometry Coupled focused Ultrasound System (PhoCUS) for simultaneously monitoring FUS effects on neural activity of subcortical genetically targeted cell types in freely behaving animals. We identified a parameter set that selectively increases activity of parvalbumin interneurons while suppressing excitatory neurons in the hippocampus. A net inhibitory effect localized to the hippocampus was further confirmed through whole brain metabolic imaging. Finally, these inhibitory selective parameters achieved significant spike suppression in the kainate model of chronic temporal lobe epilepsy, opening the door for future noninvasive therapies.
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spelling pubmed-96742442023-05-07 A tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy Murphy, Keith R. Farrell, Jordan S. Gomez, Juan L. Stedman, Quintin G. Li, Ningrui Leung, Steven A. Good, Cameron H. Qiu, Zhihai Firouzi, Kamyar Butts Pauly, Kim Khuri-Yakub, Butrus Pierre T. Michaelides, Michael Soltesz, Ivan de Lecea, Luis Proc Natl Acad Sci U S A Biological Sciences Focused ultrasound (FUS) is a powerful tool for noninvasive modulation of deep brain activity with promising therapeutic potential for refractory epilepsy; however, tools for examining FUS effects on specific cell types within the deep brain do not yet exist. Consequently, how cell types within heterogeneous networks can be modulated and whether parameters can be identified to bias these networks in the context of complex behaviors remains unknown. To address this, we developed a fiber Photometry Coupled focused Ultrasound System (PhoCUS) for simultaneously monitoring FUS effects on neural activity of subcortical genetically targeted cell types in freely behaving animals. We identified a parameter set that selectively increases activity of parvalbumin interneurons while suppressing excitatory neurons in the hippocampus. A net inhibitory effect localized to the hippocampus was further confirmed through whole brain metabolic imaging. Finally, these inhibitory selective parameters achieved significant spike suppression in the kainate model of chronic temporal lobe epilepsy, opening the door for future noninvasive therapies. National Academy of Sciences 2022-11-07 2022-11-15 /pmc/articles/PMC9674244/ /pubmed/36343238 http://dx.doi.org/10.1073/pnas.2206828119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Murphy, Keith R.
Farrell, Jordan S.
Gomez, Juan L.
Stedman, Quintin G.
Li, Ningrui
Leung, Steven A.
Good, Cameron H.
Qiu, Zhihai
Firouzi, Kamyar
Butts Pauly, Kim
Khuri-Yakub, Butrus Pierre T.
Michaelides, Michael
Soltesz, Ivan
de Lecea, Luis
A tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy
title A tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy
title_full A tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy
title_fullStr A tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy
title_full_unstemmed A tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy
title_short A tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy
title_sort tool for monitoring cell type–specific focused ultrasound neuromodulation and control of chronic epilepsy
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9674244/
https://www.ncbi.nlm.nih.gov/pubmed/36343238
http://dx.doi.org/10.1073/pnas.2206828119
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