Visualizing the distribution of synapses from individual neurons in the mouse brain.

BACKGROUND:Proper function of the mammalian brain relies on the establishment of highly specific synaptic connections among billions of neurons. To understand how complex neural circuits function, it is crucial to precisely describe neuronal connectivity and the distributions of synapses to and from...

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Main Authors: Ling Li, Bosiljka Tasic, Kristina D Micheva, Vsevolod M Ivanov, Maria L Spletter, Stephen J Smith, Liqun Luo
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2010-07-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC2901335?pdf=render
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spelling doaj-0c83b80821214231afbf4efd1c8c3fba2020-11-25T00:08:38ZengPublic Library of Science (PLoS)PLoS ONE1932-62032010-07-0157e1150310.1371/journal.pone.0011503Visualizing the distribution of synapses from individual neurons in the mouse brain.Ling LiBosiljka TasicKristina D MichevaVsevolod M IvanovMaria L SpletterStephen J SmithLiqun LuoBACKGROUND:Proper function of the mammalian brain relies on the establishment of highly specific synaptic connections among billions of neurons. To understand how complex neural circuits function, it is crucial to precisely describe neuronal connectivity and the distributions of synapses to and from individual neurons. METHODS AND FINDINGS:In this study, we present a new genetic synaptic labeling method that relies on expression of a presynaptic marker, synaptophysin-GFP (Syp-GFP) in individual neurons in vivo. We assess the reliability of this method and use it to analyze the spatial patterning of synapses in developing and mature cerebellar granule cells (GCs). In immature GCs, Syp-GFP is distributed in both axonal and dendritic regions. Upon maturation, it becomes strongly enriched in axons. In mature GCs, we analyzed synapses along their ascending segments and parallel fibers. We observe no differences in presynaptic distribution between GCs born at different developmental time points and thus having varied depths of projections in the molecular layer. We found that the mean densities of synapses along the parallel fiber and the ascending segment above the Purkinje cell (PC) layer are statistically indistinguishable, and higher than previous estimates. Interestingly, presynaptic terminals were also found in the ascending segments of GCs below and within the PC layer, with the mean densities two-fold lower than that above the PC layer. The difference in the density of synapses in these parts of the ascending segment likely reflects the regional differences in postsynaptic target cells of GCs. CONCLUSIONS:The ability to visualize synapses of single neurons in vivo is valuable for studying synaptogenesis and synaptic plasticity within individual neurons as well as information flow in neural circuits.http://europepmc.org/articles/PMC2901335?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Ling Li
Bosiljka Tasic
Kristina D Micheva
Vsevolod M Ivanov
Maria L Spletter
Stephen J Smith
Liqun Luo
spellingShingle Ling Li
Bosiljka Tasic
Kristina D Micheva
Vsevolod M Ivanov
Maria L Spletter
Stephen J Smith
Liqun Luo
Visualizing the distribution of synapses from individual neurons in the mouse brain.
PLoS ONE
author_facet Ling Li
Bosiljka Tasic
Kristina D Micheva
Vsevolod M Ivanov
Maria L Spletter
Stephen J Smith
Liqun Luo
author_sort Ling Li
title Visualizing the distribution of synapses from individual neurons in the mouse brain.
title_short Visualizing the distribution of synapses from individual neurons in the mouse brain.
title_full Visualizing the distribution of synapses from individual neurons in the mouse brain.
title_fullStr Visualizing the distribution of synapses from individual neurons in the mouse brain.
title_full_unstemmed Visualizing the distribution of synapses from individual neurons in the mouse brain.
title_sort visualizing the distribution of synapses from individual neurons in the mouse brain.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2010-07-01
description BACKGROUND:Proper function of the mammalian brain relies on the establishment of highly specific synaptic connections among billions of neurons. To understand how complex neural circuits function, it is crucial to precisely describe neuronal connectivity and the distributions of synapses to and from individual neurons. METHODS AND FINDINGS:In this study, we present a new genetic synaptic labeling method that relies on expression of a presynaptic marker, synaptophysin-GFP (Syp-GFP) in individual neurons in vivo. We assess the reliability of this method and use it to analyze the spatial patterning of synapses in developing and mature cerebellar granule cells (GCs). In immature GCs, Syp-GFP is distributed in both axonal and dendritic regions. Upon maturation, it becomes strongly enriched in axons. In mature GCs, we analyzed synapses along their ascending segments and parallel fibers. We observe no differences in presynaptic distribution between GCs born at different developmental time points and thus having varied depths of projections in the molecular layer. We found that the mean densities of synapses along the parallel fiber and the ascending segment above the Purkinje cell (PC) layer are statistically indistinguishable, and higher than previous estimates. Interestingly, presynaptic terminals were also found in the ascending segments of GCs below and within the PC layer, with the mean densities two-fold lower than that above the PC layer. The difference in the density of synapses in these parts of the ascending segment likely reflects the regional differences in postsynaptic target cells of GCs. CONCLUSIONS:The ability to visualize synapses of single neurons in vivo is valuable for studying synaptogenesis and synaptic plasticity within individual neurons as well as information flow in neural circuits.
url http://europepmc.org/articles/PMC2901335?pdf=render
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