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Arrays of MicroLEDs and Astrocytes: Biological Amplifiers to Optogenetically Modulate Neuronal Networks Reducing Light Requirement

In the modern view of synaptic transmission, astrocytes are no longer confined to the role of merely supportive cells. Although they do not generate action potentials, they nonetheless exhibit electrical activity and can influence surrounding neurons through gliotransmitter release. In this work, we...

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Autores principales: Berlinguer-Palmini, Rolando, Narducci, Roberto, Merhan, Kamyar, Dilaghi, Arianna, Moroni, Flavio, Masi, Alessio, Scartabelli, Tania, Landucci, Elisa, Sili, Maria, Schettini, Antonio, McGovern, Brian, Maskaant, Pleun, Degenaar, Patrick, Mannaioni, Guido
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4180921/
https://www.ncbi.nlm.nih.gov/pubmed/25265500
http://dx.doi.org/10.1371/journal.pone.0108689
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author Berlinguer-Palmini, Rolando
Narducci, Roberto
Merhan, Kamyar
Dilaghi, Arianna
Moroni, Flavio
Masi, Alessio
Scartabelli, Tania
Landucci, Elisa
Sili, Maria
Schettini, Antonio
McGovern, Brian
Maskaant, Pleun
Degenaar, Patrick
Mannaioni, Guido
author_facet Berlinguer-Palmini, Rolando
Narducci, Roberto
Merhan, Kamyar
Dilaghi, Arianna
Moroni, Flavio
Masi, Alessio
Scartabelli, Tania
Landucci, Elisa
Sili, Maria
Schettini, Antonio
McGovern, Brian
Maskaant, Pleun
Degenaar, Patrick
Mannaioni, Guido
author_sort Berlinguer-Palmini, Rolando
collection PubMed
description In the modern view of synaptic transmission, astrocytes are no longer confined to the role of merely supportive cells. Although they do not generate action potentials, they nonetheless exhibit electrical activity and can influence surrounding neurons through gliotransmitter release. In this work, we explored whether optogenetic activation of glial cells could act as an amplification mechanism to optical neural stimulation via gliotransmission to the neural network. We studied the modulation of gliotransmission by selective photo-activation of channelrhodopsin-2 (ChR2) and by means of a matrix of individually addressable super-bright microLEDs (μLEDs) with an excitation peak at 470 nm. We combined Ca(2+) imaging techniques and concurrent patch-clamp electrophysiology to obtain subsequent glia/neural activity. First, we tested the μLEDs efficacy in stimulating ChR2-transfected astrocyte. ChR2-induced astrocytic current did not desensitize overtime, and was linearly increased and prolonged by increasing μLED irradiance in terms of intensity and surface illumination. Subsequently, ChR2 astrocytic stimulation by broad-field LED illumination with the same spectral profile, increased both glial cells and neuronal calcium transient frequency and sEPSCs suggesting that few ChR2-transfected astrocytes were able to excite surrounding not-ChR2-transfected astrocytes and neurons. Finally, by using the μLEDs array to selectively light stimulate ChR2 positive astrocytes we were able to increase the synaptic activity of single neurons surrounding it. In conclusion, ChR2-transfected astrocytes and μLEDs system were shown to be an amplifier of synaptic activity in mixed corticalneuronal and glial cells culture.
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spelling pubmed-41809212014-10-07 Arrays of MicroLEDs and Astrocytes: Biological Amplifiers to Optogenetically Modulate Neuronal Networks Reducing Light Requirement Berlinguer-Palmini, Rolando Narducci, Roberto Merhan, Kamyar Dilaghi, Arianna Moroni, Flavio Masi, Alessio Scartabelli, Tania Landucci, Elisa Sili, Maria Schettini, Antonio McGovern, Brian Maskaant, Pleun Degenaar, Patrick Mannaioni, Guido PLoS One Research Article In the modern view of synaptic transmission, astrocytes are no longer confined to the role of merely supportive cells. Although they do not generate action potentials, they nonetheless exhibit electrical activity and can influence surrounding neurons through gliotransmitter release. In this work, we explored whether optogenetic activation of glial cells could act as an amplification mechanism to optical neural stimulation via gliotransmission to the neural network. We studied the modulation of gliotransmission by selective photo-activation of channelrhodopsin-2 (ChR2) and by means of a matrix of individually addressable super-bright microLEDs (μLEDs) with an excitation peak at 470 nm. We combined Ca(2+) imaging techniques and concurrent patch-clamp electrophysiology to obtain subsequent glia/neural activity. First, we tested the μLEDs efficacy in stimulating ChR2-transfected astrocyte. ChR2-induced astrocytic current did not desensitize overtime, and was linearly increased and prolonged by increasing μLED irradiance in terms of intensity and surface illumination. Subsequently, ChR2 astrocytic stimulation by broad-field LED illumination with the same spectral profile, increased both glial cells and neuronal calcium transient frequency and sEPSCs suggesting that few ChR2-transfected astrocytes were able to excite surrounding not-ChR2-transfected astrocytes and neurons. Finally, by using the μLEDs array to selectively light stimulate ChR2 positive astrocytes we were able to increase the synaptic activity of single neurons surrounding it. In conclusion, ChR2-transfected astrocytes and μLEDs system were shown to be an amplifier of synaptic activity in mixed corticalneuronal and glial cells culture. Public Library of Science 2014-09-29 /pmc/articles/PMC4180921/ /pubmed/25265500 http://dx.doi.org/10.1371/journal.pone.0108689 Text en © 2014 Berlinguer-Palmini 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
Berlinguer-Palmini, Rolando
Narducci, Roberto
Merhan, Kamyar
Dilaghi, Arianna
Moroni, Flavio
Masi, Alessio
Scartabelli, Tania
Landucci, Elisa
Sili, Maria
Schettini, Antonio
McGovern, Brian
Maskaant, Pleun
Degenaar, Patrick
Mannaioni, Guido
Arrays of MicroLEDs and Astrocytes: Biological Amplifiers to Optogenetically Modulate Neuronal Networks Reducing Light Requirement
title Arrays of MicroLEDs and Astrocytes: Biological Amplifiers to Optogenetically Modulate Neuronal Networks Reducing Light Requirement
title_full Arrays of MicroLEDs and Astrocytes: Biological Amplifiers to Optogenetically Modulate Neuronal Networks Reducing Light Requirement
title_fullStr Arrays of MicroLEDs and Astrocytes: Biological Amplifiers to Optogenetically Modulate Neuronal Networks Reducing Light Requirement
title_full_unstemmed Arrays of MicroLEDs and Astrocytes: Biological Amplifiers to Optogenetically Modulate Neuronal Networks Reducing Light Requirement
title_short Arrays of MicroLEDs and Astrocytes: Biological Amplifiers to Optogenetically Modulate Neuronal Networks Reducing Light Requirement
title_sort arrays of microleds and astrocytes: biological amplifiers to optogenetically modulate neuronal networks reducing light requirement
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4180921/
https://www.ncbi.nlm.nih.gov/pubmed/25265500
http://dx.doi.org/10.1371/journal.pone.0108689
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