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Synaptic Organization of the Human Temporal Lobe Neocortex as Revealed by High-Resolution Transmission, Focused Ion Beam Scanning, and Electron Microscopic Tomography
Modern electron microscopy (EM) such as fine-scale transmission EM, focused ion beam scanning EM, and EM tomography have enormously improved our knowledge about the synaptic organization of the normal, developmental, and pathologically altered brain. In contrast to various animal species, comparably...
Autores principales: | , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7432700/ https://www.ncbi.nlm.nih.gov/pubmed/32756507 http://dx.doi.org/10.3390/ijms21155558 |
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author | Rollenhagen, Astrid Walkenfort, Bernd Yakoubi, Rachida Klauke, Sarah A. Schmuhl-Giesen, Sandra F. Heinen-Weiler, Jacqueline Voortmann, Sylvia Marshallsay, Brigitte Palaz, Tayfun Holz, Ulrike Hasenberg, Mike Lübke, Joachim H.R. |
author_facet | Rollenhagen, Astrid Walkenfort, Bernd Yakoubi, Rachida Klauke, Sarah A. Schmuhl-Giesen, Sandra F. Heinen-Weiler, Jacqueline Voortmann, Sylvia Marshallsay, Brigitte Palaz, Tayfun Holz, Ulrike Hasenberg, Mike Lübke, Joachim H.R. |
author_sort | Rollenhagen, Astrid |
collection | PubMed |
description | Modern electron microscopy (EM) such as fine-scale transmission EM, focused ion beam scanning EM, and EM tomography have enormously improved our knowledge about the synaptic organization of the normal, developmental, and pathologically altered brain. In contrast to various animal species, comparably little is known about these structures in the human brain. Non-epileptic neocortical access tissue from epilepsy surgery was used to generate quantitative 3D models of synapses. Beside the overall geometry, the number, size, and shape of active zones and of the three functionally defined pools of synaptic vesicles representing morphological correlates for synaptic transmission and plasticity were quantified. EM tomography further allowed new insights in the morphological organization and size of the functionally defined readily releasable pool. Beside similarities, human synaptic boutons, although comparably small (approximately 5 µm), differed substantially in several structural parameters, such as the shape and size of active zones, which were on average 2 to 3-fold larger than in experimental animals. The total pool of synaptic vesicles exceeded that in experimental animals by approximately 2 to 3-fold, in particular the readily releasable and recycling pool by approximately 2 to 5-fold, although these pools seemed to be layer-specifically organized. Taken together, synaptic boutons in the human temporal lobe neocortex represent unique entities perfectly adapted to the “job” they have to fulfill in the circuitry in which they are embedded. Furthermore, the quantitative 3D models of synaptic boutons are useful to explain and even predict the functional properties of synaptic connections in the human neocortex. |
format | Online Article Text |
id | pubmed-7432700 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-74327002020-08-27 Synaptic Organization of the Human Temporal Lobe Neocortex as Revealed by High-Resolution Transmission, Focused Ion Beam Scanning, and Electron Microscopic Tomography Rollenhagen, Astrid Walkenfort, Bernd Yakoubi, Rachida Klauke, Sarah A. Schmuhl-Giesen, Sandra F. Heinen-Weiler, Jacqueline Voortmann, Sylvia Marshallsay, Brigitte Palaz, Tayfun Holz, Ulrike Hasenberg, Mike Lübke, Joachim H.R. Int J Mol Sci Article Modern electron microscopy (EM) such as fine-scale transmission EM, focused ion beam scanning EM, and EM tomography have enormously improved our knowledge about the synaptic organization of the normal, developmental, and pathologically altered brain. In contrast to various animal species, comparably little is known about these structures in the human brain. Non-epileptic neocortical access tissue from epilepsy surgery was used to generate quantitative 3D models of synapses. Beside the overall geometry, the number, size, and shape of active zones and of the three functionally defined pools of synaptic vesicles representing morphological correlates for synaptic transmission and plasticity were quantified. EM tomography further allowed new insights in the morphological organization and size of the functionally defined readily releasable pool. Beside similarities, human synaptic boutons, although comparably small (approximately 5 µm), differed substantially in several structural parameters, such as the shape and size of active zones, which were on average 2 to 3-fold larger than in experimental animals. The total pool of synaptic vesicles exceeded that in experimental animals by approximately 2 to 3-fold, in particular the readily releasable and recycling pool by approximately 2 to 5-fold, although these pools seemed to be layer-specifically organized. Taken together, synaptic boutons in the human temporal lobe neocortex represent unique entities perfectly adapted to the “job” they have to fulfill in the circuitry in which they are embedded. Furthermore, the quantitative 3D models of synaptic boutons are useful to explain and even predict the functional properties of synaptic connections in the human neocortex. MDPI 2020-08-03 /pmc/articles/PMC7432700/ /pubmed/32756507 http://dx.doi.org/10.3390/ijms21155558 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Rollenhagen, Astrid Walkenfort, Bernd Yakoubi, Rachida Klauke, Sarah A. Schmuhl-Giesen, Sandra F. Heinen-Weiler, Jacqueline Voortmann, Sylvia Marshallsay, Brigitte Palaz, Tayfun Holz, Ulrike Hasenberg, Mike Lübke, Joachim H.R. Synaptic Organization of the Human Temporal Lobe Neocortex as Revealed by High-Resolution Transmission, Focused Ion Beam Scanning, and Electron Microscopic Tomography |
title | Synaptic Organization of the Human Temporal Lobe Neocortex as Revealed by High-Resolution Transmission, Focused Ion Beam Scanning, and Electron Microscopic Tomography |
title_full | Synaptic Organization of the Human Temporal Lobe Neocortex as Revealed by High-Resolution Transmission, Focused Ion Beam Scanning, and Electron Microscopic Tomography |
title_fullStr | Synaptic Organization of the Human Temporal Lobe Neocortex as Revealed by High-Resolution Transmission, Focused Ion Beam Scanning, and Electron Microscopic Tomography |
title_full_unstemmed | Synaptic Organization of the Human Temporal Lobe Neocortex as Revealed by High-Resolution Transmission, Focused Ion Beam Scanning, and Electron Microscopic Tomography |
title_short | Synaptic Organization of the Human Temporal Lobe Neocortex as Revealed by High-Resolution Transmission, Focused Ion Beam Scanning, and Electron Microscopic Tomography |
title_sort | synaptic organization of the human temporal lobe neocortex as revealed by high-resolution transmission, focused ion beam scanning, and electron microscopic tomography |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7432700/ https://www.ncbi.nlm.nih.gov/pubmed/32756507 http://dx.doi.org/10.3390/ijms21155558 |
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