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Ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation

Analysis of neuronal compartments has revealed many state-dependent changes in geometry but establishing synapse-specific mechanisms at the nanoscale has proven elusive. We co-expressed channelrhodopsin2-GFP and mAPEX2 in a subset of hippocampal CA3 neurons and used trains of light to induce late-ph...

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Autores principales: Kuwajima, Masaaki, Ostrovskaya, Olga I., Cao, Guan, Weisberg, Seth A., Harris, Kristen M., Zemelman, Boris V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6961864/
https://www.ncbi.nlm.nih.gov/pubmed/31940316
http://dx.doi.org/10.1371/journal.pone.0226797
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author Kuwajima, Masaaki
Ostrovskaya, Olga I.
Cao, Guan
Weisberg, Seth A.
Harris, Kristen M.
Zemelman, Boris V.
author_facet Kuwajima, Masaaki
Ostrovskaya, Olga I.
Cao, Guan
Weisberg, Seth A.
Harris, Kristen M.
Zemelman, Boris V.
author_sort Kuwajima, Masaaki
collection PubMed
description Analysis of neuronal compartments has revealed many state-dependent changes in geometry but establishing synapse-specific mechanisms at the nanoscale has proven elusive. We co-expressed channelrhodopsin2-GFP and mAPEX2 in a subset of hippocampal CA3 neurons and used trains of light to induce late-phase long-term potentiation (L-LTP) in area CA1. L-LTP was shown to be specific to the labeled axons by severing CA3 inputs, which prevented back-propagating recruitment of unlabeled axons. Membrane-associated mAPEX2 tolerated microwave-enhanced chemical fixation and drove tyramide signal amplification to deposit Alexa Fluor dyes in the light-activated axons. Subsequent post-embedding immunogold labeling resulted in outstanding ultrastructure and clear distinctions between labeled (activated), and unlabeled axons without obscuring subcellular organelles. The gold-labeled axons in potentiated slices were reconstructed through serial section electron microscopy; presynaptic vesicles and other constituents could be quantified unambiguously. The genetic specification, reliable physiology, and compatibility with established methods for ultrastructural preservation make this an ideal approach to link synapse ultrastructure and function in intact circuits.
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spelling pubmed-69618642020-01-26 Ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation Kuwajima, Masaaki Ostrovskaya, Olga I. Cao, Guan Weisberg, Seth A. Harris, Kristen M. Zemelman, Boris V. PLoS One Research Article Analysis of neuronal compartments has revealed many state-dependent changes in geometry but establishing synapse-specific mechanisms at the nanoscale has proven elusive. We co-expressed channelrhodopsin2-GFP and mAPEX2 in a subset of hippocampal CA3 neurons and used trains of light to induce late-phase long-term potentiation (L-LTP) in area CA1. L-LTP was shown to be specific to the labeled axons by severing CA3 inputs, which prevented back-propagating recruitment of unlabeled axons. Membrane-associated mAPEX2 tolerated microwave-enhanced chemical fixation and drove tyramide signal amplification to deposit Alexa Fluor dyes in the light-activated axons. Subsequent post-embedding immunogold labeling resulted in outstanding ultrastructure and clear distinctions between labeled (activated), and unlabeled axons without obscuring subcellular organelles. The gold-labeled axons in potentiated slices were reconstructed through serial section electron microscopy; presynaptic vesicles and other constituents could be quantified unambiguously. The genetic specification, reliable physiology, and compatibility with established methods for ultrastructural preservation make this an ideal approach to link synapse ultrastructure and function in intact circuits. Public Library of Science 2020-01-15 /pmc/articles/PMC6961864/ /pubmed/31940316 http://dx.doi.org/10.1371/journal.pone.0226797 Text en © 2020 Kuwajima 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Kuwajima, Masaaki
Ostrovskaya, Olga I.
Cao, Guan
Weisberg, Seth A.
Harris, Kristen M.
Zemelman, Boris V.
Ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation
title Ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation
title_full Ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation
title_fullStr Ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation
title_full_unstemmed Ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation
title_short Ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation
title_sort ultrastructure of light-activated axons following optogenetic stimulation to produce late-phase long-term potentiation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6961864/
https://www.ncbi.nlm.nih.gov/pubmed/31940316
http://dx.doi.org/10.1371/journal.pone.0226797
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