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Selective Inactivation of Reelin in Inhibitory Interneurons Leads to Subtle Changes in the Dentate Gyrus But Leaves Cortical Layering and Behavior Unaffected

Reelin is an extracellular matrix protein, known for its dual role in neuronal migration during brain development and in synaptic plasticity at adult stages. During the perinatal phase, Reelin expression switches from Cajal-Retzius (CR) cells, its main source before birth, to inhibitory interneurons...

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Autores principales: Pahle, Jasmine, Muhia, Mary, Wagener, Robin J, Tippmann, Anja, Bock, Hans H, Graw, Janice, Herz, Joachim, Staiger, Jochen F, Drakew, Alexander, Kneussel, Matthias, Rune, Gabriele M, Frotscher, Michael, Brunne, Bianka
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7132935/
https://www.ncbi.nlm.nih.gov/pubmed/31667489
http://dx.doi.org/10.1093/cercor/bhz196
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author Pahle, Jasmine
Muhia, Mary
Wagener, Robin J
Tippmann, Anja
Bock, Hans H
Graw, Janice
Herz, Joachim
Staiger, Jochen F
Drakew, Alexander
Kneussel, Matthias
Rune, Gabriele M
Frotscher, Michael
Brunne, Bianka
author_facet Pahle, Jasmine
Muhia, Mary
Wagener, Robin J
Tippmann, Anja
Bock, Hans H
Graw, Janice
Herz, Joachim
Staiger, Jochen F
Drakew, Alexander
Kneussel, Matthias
Rune, Gabriele M
Frotscher, Michael
Brunne, Bianka
author_sort Pahle, Jasmine
collection PubMed
description Reelin is an extracellular matrix protein, known for its dual role in neuronal migration during brain development and in synaptic plasticity at adult stages. During the perinatal phase, Reelin expression switches from Cajal-Retzius (CR) cells, its main source before birth, to inhibitory interneurons (IN), the main source of Reelin in the adult forebrain. IN-derived Reelin has been associated with schizophrenia and temporal lobe epilepsy; however, the functional role of Reelin from INs is presently unclear. In this study, we used conditional knockout mice, which lack Reelin expression specifically in inhibitory INs, leading to a substantial reduction in total Reelin expression in the neocortex and dentate gyrus. Our results show that IN-specific Reelin knockout mice exhibit normal neuronal layering and normal behavior, including spatial reference memory. Although INs are the major source of Reelin within the adult stem cell niche, Reelin from INs does not contribute substantially to normal adult neurogenesis. While a closer look at the dentate gyrus revealed some unexpected alterations at the cellular level, including an increase in the number of Reelin expressing CR cells, overall our data suggest that Reelin derived from INs is less critical for cortex development and function than Reelin expressed by CR cells.
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spelling pubmed-71329352020-04-09 Selective Inactivation of Reelin in Inhibitory Interneurons Leads to Subtle Changes in the Dentate Gyrus But Leaves Cortical Layering and Behavior Unaffected Pahle, Jasmine Muhia, Mary Wagener, Robin J Tippmann, Anja Bock, Hans H Graw, Janice Herz, Joachim Staiger, Jochen F Drakew, Alexander Kneussel, Matthias Rune, Gabriele M Frotscher, Michael Brunne, Bianka Cereb Cortex Original Article Reelin is an extracellular matrix protein, known for its dual role in neuronal migration during brain development and in synaptic plasticity at adult stages. During the perinatal phase, Reelin expression switches from Cajal-Retzius (CR) cells, its main source before birth, to inhibitory interneurons (IN), the main source of Reelin in the adult forebrain. IN-derived Reelin has been associated with schizophrenia and temporal lobe epilepsy; however, the functional role of Reelin from INs is presently unclear. In this study, we used conditional knockout mice, which lack Reelin expression specifically in inhibitory INs, leading to a substantial reduction in total Reelin expression in the neocortex and dentate gyrus. Our results show that IN-specific Reelin knockout mice exhibit normal neuronal layering and normal behavior, including spatial reference memory. Although INs are the major source of Reelin within the adult stem cell niche, Reelin from INs does not contribute substantially to normal adult neurogenesis. While a closer look at the dentate gyrus revealed some unexpected alterations at the cellular level, including an increase in the number of Reelin expressing CR cells, overall our data suggest that Reelin derived from INs is less critical for cortex development and function than Reelin expressed by CR cells. Oxford University Press 2020-03 2019-10-30 /pmc/articles/PMC7132935/ /pubmed/31667489 http://dx.doi.org/10.1093/cercor/bhz196 Text en © The Author(s) 2019. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Original Article
Pahle, Jasmine
Muhia, Mary
Wagener, Robin J
Tippmann, Anja
Bock, Hans H
Graw, Janice
Herz, Joachim
Staiger, Jochen F
Drakew, Alexander
Kneussel, Matthias
Rune, Gabriele M
Frotscher, Michael
Brunne, Bianka
Selective Inactivation of Reelin in Inhibitory Interneurons Leads to Subtle Changes in the Dentate Gyrus But Leaves Cortical Layering and Behavior Unaffected
title Selective Inactivation of Reelin in Inhibitory Interneurons Leads to Subtle Changes in the Dentate Gyrus But Leaves Cortical Layering and Behavior Unaffected
title_full Selective Inactivation of Reelin in Inhibitory Interneurons Leads to Subtle Changes in the Dentate Gyrus But Leaves Cortical Layering and Behavior Unaffected
title_fullStr Selective Inactivation of Reelin in Inhibitory Interneurons Leads to Subtle Changes in the Dentate Gyrus But Leaves Cortical Layering and Behavior Unaffected
title_full_unstemmed Selective Inactivation of Reelin in Inhibitory Interneurons Leads to Subtle Changes in the Dentate Gyrus But Leaves Cortical Layering and Behavior Unaffected
title_short Selective Inactivation of Reelin in Inhibitory Interneurons Leads to Subtle Changes in the Dentate Gyrus But Leaves Cortical Layering and Behavior Unaffected
title_sort selective inactivation of reelin in inhibitory interneurons leads to subtle changes in the dentate gyrus but leaves cortical layering and behavior unaffected
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7132935/
https://www.ncbi.nlm.nih.gov/pubmed/31667489
http://dx.doi.org/10.1093/cercor/bhz196
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