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Automated Live-Cell Imaging of Synapses in Rat and Human Neuronal Cultures

Synapse loss and dendritic damage correlate with cognitive decline in many neurodegenerative diseases, underlie neurodevelopmental disorders, and are associated with environmental and drug-induced CNS toxicities. However, screening assays designed to measure loss of synaptic connections between live...

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Autores principales: Green, Matthew V., Pengo, Thomas, Raybuck, Jonathan D., Naqvi, Tahmina, McMullan, Hannah M., Hawkinson, Jon E., Marron Fernandez de Velasco, Ezequiel, Muntean, Brian S., Martemyanov, Kirill A., Satterfield, Rachel, Young, Samuel M., Thayer, Stanley A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6811609/
https://www.ncbi.nlm.nih.gov/pubmed/31680875
http://dx.doi.org/10.3389/fncel.2019.00467
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author Green, Matthew V.
Pengo, Thomas
Raybuck, Jonathan D.
Naqvi, Tahmina
McMullan, Hannah M.
Hawkinson, Jon E.
Marron Fernandez de Velasco, Ezequiel
Muntean, Brian S.
Martemyanov, Kirill A.
Satterfield, Rachel
Young, Samuel M.
Thayer, Stanley A.
author_facet Green, Matthew V.
Pengo, Thomas
Raybuck, Jonathan D.
Naqvi, Tahmina
McMullan, Hannah M.
Hawkinson, Jon E.
Marron Fernandez de Velasco, Ezequiel
Muntean, Brian S.
Martemyanov, Kirill A.
Satterfield, Rachel
Young, Samuel M.
Thayer, Stanley A.
author_sort Green, Matthew V.
collection PubMed
description Synapse loss and dendritic damage correlate with cognitive decline in many neurodegenerative diseases, underlie neurodevelopmental disorders, and are associated with environmental and drug-induced CNS toxicities. However, screening assays designed to measure loss of synaptic connections between live cells are lacking. Here, we describe the design and validation of automated synaptic imaging assay (ASIA), an efficient approach to label, image, and analyze synapses between live neurons. Using viral transduction to express fluorescent proteins that label synapses and an automated computer-controlled microscope, we developed a method to identify agents that regulate synapse number. ASIA is compatible with both confocal and wide-field microscopy; wide-field image acquisition is faster but requires a deconvolution step in the analysis. Both types of images feed into batch processing analysis software that can be run on ImageJ, CellProfiler, and MetaMorph platforms. Primary analysis endpoints are the number of structural synapses and cell viability. Thus, overt cell death is differentiated from subtle changes in synapse density, an important distinction when studying neurodegenerative processes. In rat hippocampal cultures treated for 24 h with 100 μM 2-bromopalmitic acid (2-BP), a compound that prevents clustering of postsynaptic density 95 (PSD95), ASIA reliably detected loss of postsynaptic density 95-enhanced green fluorescent protein (PSD95-eGFP)-labeled synapses in the absence of cell death. In contrast, treatment with 100 μM glutamate produced synapse loss and significant cell death, determined from morphological changes in a binary image created from co-expressed mCherry. Treatment with 3 mM lithium for 24 h significantly increased the number of fluorescent puncta, showing that ASIA also detects synaptogenesis. Proof of concept studies show that cell-specific promoters enable the selective study of inhibitory or principal neurons and that alternative reporter constructs enable quantification of GABAergic or glutamatergic synapses. ASIA can also be used to study synapse loss between human induced pluripotent stem cell (iPSC)-derived cortical neurons. Significant synapse loss in the absence of cell death was detected in the iPSC-derived neuronal cultures treated with either 100 μM 2-BP or 100 μM glutamate for 24 h, while 300 μM glutamate produced synapse loss and cell death. ASIA shows promise for identifying agents that evoke synaptic toxicities and screening for compounds that prevent or reverse synapse loss.
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spelling pubmed-68116092019-11-03 Automated Live-Cell Imaging of Synapses in Rat and Human Neuronal Cultures Green, Matthew V. Pengo, Thomas Raybuck, Jonathan D. Naqvi, Tahmina McMullan, Hannah M. Hawkinson, Jon E. Marron Fernandez de Velasco, Ezequiel Muntean, Brian S. Martemyanov, Kirill A. Satterfield, Rachel Young, Samuel M. Thayer, Stanley A. Front Cell Neurosci Cellular Neuroscience Synapse loss and dendritic damage correlate with cognitive decline in many neurodegenerative diseases, underlie neurodevelopmental disorders, and are associated with environmental and drug-induced CNS toxicities. However, screening assays designed to measure loss of synaptic connections between live cells are lacking. Here, we describe the design and validation of automated synaptic imaging assay (ASIA), an efficient approach to label, image, and analyze synapses between live neurons. Using viral transduction to express fluorescent proteins that label synapses and an automated computer-controlled microscope, we developed a method to identify agents that regulate synapse number. ASIA is compatible with both confocal and wide-field microscopy; wide-field image acquisition is faster but requires a deconvolution step in the analysis. Both types of images feed into batch processing analysis software that can be run on ImageJ, CellProfiler, and MetaMorph platforms. Primary analysis endpoints are the number of structural synapses and cell viability. Thus, overt cell death is differentiated from subtle changes in synapse density, an important distinction when studying neurodegenerative processes. In rat hippocampal cultures treated for 24 h with 100 μM 2-bromopalmitic acid (2-BP), a compound that prevents clustering of postsynaptic density 95 (PSD95), ASIA reliably detected loss of postsynaptic density 95-enhanced green fluorescent protein (PSD95-eGFP)-labeled synapses in the absence of cell death. In contrast, treatment with 100 μM glutamate produced synapse loss and significant cell death, determined from morphological changes in a binary image created from co-expressed mCherry. Treatment with 3 mM lithium for 24 h significantly increased the number of fluorescent puncta, showing that ASIA also detects synaptogenesis. Proof of concept studies show that cell-specific promoters enable the selective study of inhibitory or principal neurons and that alternative reporter constructs enable quantification of GABAergic or glutamatergic synapses. ASIA can also be used to study synapse loss between human induced pluripotent stem cell (iPSC)-derived cortical neurons. Significant synapse loss in the absence of cell death was detected in the iPSC-derived neuronal cultures treated with either 100 μM 2-BP or 100 μM glutamate for 24 h, while 300 μM glutamate produced synapse loss and cell death. ASIA shows promise for identifying agents that evoke synaptic toxicities and screening for compounds that prevent or reverse synapse loss. Frontiers Media S.A. 2019-10-17 /pmc/articles/PMC6811609/ /pubmed/31680875 http://dx.doi.org/10.3389/fncel.2019.00467 Text en Copyright © 2019 Green, Pengo, Raybuck, Naqvi, McMullan, Hawkinson, Marron Fernandez de Velasco, Muntean, Martemyanov, Satterfield, Young and Thayer. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cellular Neuroscience
Green, Matthew V.
Pengo, Thomas
Raybuck, Jonathan D.
Naqvi, Tahmina
McMullan, Hannah M.
Hawkinson, Jon E.
Marron Fernandez de Velasco, Ezequiel
Muntean, Brian S.
Martemyanov, Kirill A.
Satterfield, Rachel
Young, Samuel M.
Thayer, Stanley A.
Automated Live-Cell Imaging of Synapses in Rat and Human Neuronal Cultures
title Automated Live-Cell Imaging of Synapses in Rat and Human Neuronal Cultures
title_full Automated Live-Cell Imaging of Synapses in Rat and Human Neuronal Cultures
title_fullStr Automated Live-Cell Imaging of Synapses in Rat and Human Neuronal Cultures
title_full_unstemmed Automated Live-Cell Imaging of Synapses in Rat and Human Neuronal Cultures
title_short Automated Live-Cell Imaging of Synapses in Rat and Human Neuronal Cultures
title_sort automated live-cell imaging of synapses in rat and human neuronal cultures
topic Cellular Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6811609/
https://www.ncbi.nlm.nih.gov/pubmed/31680875
http://dx.doi.org/10.3389/fncel.2019.00467
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