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A Multimodal Micro-Optrode Combining Field and Single Unit Recording, Multispectral Detection and Photolabeling Capabilities

Microelectrodes have been very instrumental and minimally invasive for in vivo functional studies from deep brain structures. However they are limited in the amount of information they provide. Here, we describe a, aluminum-coated, fibre optic-based glass microprobe with multiple electrical and opti...

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Autores principales: Dufour, Suzie, Lavertu, Guillaume, Dufour-Beauséjour, Sophie, Juneau-Fecteau, Alexandre, Calakos, Nicole, Deschênes, Martin, Vallée, Réal, De Koninck, Yves
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3585187/
https://www.ncbi.nlm.nih.gov/pubmed/23469053
http://dx.doi.org/10.1371/journal.pone.0057703
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author Dufour, Suzie
Lavertu, Guillaume
Dufour-Beauséjour, Sophie
Juneau-Fecteau, Alexandre
Calakos, Nicole
Deschênes, Martin
Vallée, Réal
De Koninck, Yves
author_facet Dufour, Suzie
Lavertu, Guillaume
Dufour-Beauséjour, Sophie
Juneau-Fecteau, Alexandre
Calakos, Nicole
Deschênes, Martin
Vallée, Réal
De Koninck, Yves
author_sort Dufour, Suzie
collection PubMed
description Microelectrodes have been very instrumental and minimally invasive for in vivo functional studies from deep brain structures. However they are limited in the amount of information they provide. Here, we describe a, aluminum-coated, fibre optic-based glass microprobe with multiple electrical and optical detection capabilities while retaining tip dimensions that enable single cell measurements (diameter ≤10 µm). The probe enables optical separation from individual cells in transgenic mice expressing multiple fluorescent proteins in distinct populations of neurons within the same deep brain nucleus. It also enables color conversion of photoswitchable fluorescent proteins, which can be used for post-hoc identification of the recorded cells. While metal coating did not significantly improve the optical separation capabilities of the microprobe, the combination of metal on the outside of the probe and of a hollow core within the fiber yields a microelectrode enabling simultaneous single unit and population field potential recordings. The extended range of functionalities provided by the same microprobe thus opens several avenues for multidimensional structural and functional interrogation of single cells and their surrounding deep within the intact nervous system.
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spelling pubmed-35851872013-03-06 A Multimodal Micro-Optrode Combining Field and Single Unit Recording, Multispectral Detection and Photolabeling Capabilities Dufour, Suzie Lavertu, Guillaume Dufour-Beauséjour, Sophie Juneau-Fecteau, Alexandre Calakos, Nicole Deschênes, Martin Vallée, Réal De Koninck, Yves PLoS One Research Article Microelectrodes have been very instrumental and minimally invasive for in vivo functional studies from deep brain structures. However they are limited in the amount of information they provide. Here, we describe a, aluminum-coated, fibre optic-based glass microprobe with multiple electrical and optical detection capabilities while retaining tip dimensions that enable single cell measurements (diameter ≤10 µm). The probe enables optical separation from individual cells in transgenic mice expressing multiple fluorescent proteins in distinct populations of neurons within the same deep brain nucleus. It also enables color conversion of photoswitchable fluorescent proteins, which can be used for post-hoc identification of the recorded cells. While metal coating did not significantly improve the optical separation capabilities of the microprobe, the combination of metal on the outside of the probe and of a hollow core within the fiber yields a microelectrode enabling simultaneous single unit and population field potential recordings. The extended range of functionalities provided by the same microprobe thus opens several avenues for multidimensional structural and functional interrogation of single cells and their surrounding deep within the intact nervous system. Public Library of Science 2013-02-28 /pmc/articles/PMC3585187/ /pubmed/23469053 http://dx.doi.org/10.1371/journal.pone.0057703 Text en © 2013 Dufour et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Dufour, Suzie
Lavertu, Guillaume
Dufour-Beauséjour, Sophie
Juneau-Fecteau, Alexandre
Calakos, Nicole
Deschênes, Martin
Vallée, Réal
De Koninck, Yves
A Multimodal Micro-Optrode Combining Field and Single Unit Recording, Multispectral Detection and Photolabeling Capabilities
title A Multimodal Micro-Optrode Combining Field and Single Unit Recording, Multispectral Detection and Photolabeling Capabilities
title_full A Multimodal Micro-Optrode Combining Field and Single Unit Recording, Multispectral Detection and Photolabeling Capabilities
title_fullStr A Multimodal Micro-Optrode Combining Field and Single Unit Recording, Multispectral Detection and Photolabeling Capabilities
title_full_unstemmed A Multimodal Micro-Optrode Combining Field and Single Unit Recording, Multispectral Detection and Photolabeling Capabilities
title_short A Multimodal Micro-Optrode Combining Field and Single Unit Recording, Multispectral Detection and Photolabeling Capabilities
title_sort multimodal micro-optrode combining field and single unit recording, multispectral detection and photolabeling capabilities
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3585187/
https://www.ncbi.nlm.nih.gov/pubmed/23469053
http://dx.doi.org/10.1371/journal.pone.0057703
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