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Deletion of BDNF in Pax2 Lineage-Derived Interneuron Precursors in the Hindbrain Hampers the Proportion of Excitation/Inhibition, Learning, and Behavior

Numerous studies indicate that deficits in the proper integration or migration of specific GABAergic precursor cells from the subpallium to the cortex can lead to severe cognitive dysfunctions and neurodevelopmental pathogenesis linked to intellectual disabilities. A different set of GABAergic precu...

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Autores principales: Eckert, Philipp, Marchetta, Philine, Manthey, Marie K., Walter, Michael H., Jovanovic, Sasa, Savitska, Daria, Singer, Wibke, Jacob, Michele H., Rüttiger, Lukas, Schimmang, Thomas, Milenkovic, Ivan, Pilz, Peter K. D., Knipper, Marlies
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8033028/
https://www.ncbi.nlm.nih.gov/pubmed/33841098
http://dx.doi.org/10.3389/fnmol.2021.642679
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author Eckert, Philipp
Marchetta, Philine
Manthey, Marie K.
Walter, Michael H.
Jovanovic, Sasa
Savitska, Daria
Singer, Wibke
Jacob, Michele H.
Rüttiger, Lukas
Schimmang, Thomas
Milenkovic, Ivan
Pilz, Peter K. D.
Knipper, Marlies
author_facet Eckert, Philipp
Marchetta, Philine
Manthey, Marie K.
Walter, Michael H.
Jovanovic, Sasa
Savitska, Daria
Singer, Wibke
Jacob, Michele H.
Rüttiger, Lukas
Schimmang, Thomas
Milenkovic, Ivan
Pilz, Peter K. D.
Knipper, Marlies
author_sort Eckert, Philipp
collection PubMed
description Numerous studies indicate that deficits in the proper integration or migration of specific GABAergic precursor cells from the subpallium to the cortex can lead to severe cognitive dysfunctions and neurodevelopmental pathogenesis linked to intellectual disabilities. A different set of GABAergic precursors cells that express Pax2 migrate to hindbrain regions, targeting, for example auditory or somatosensory brainstem regions. We demonstrate that the absence of BDNF in Pax2-lineage descendants of Bdnf(Pax2)KOs causes severe cognitive disabilities. In Bdnf(Pax2)KOs, a normal number of parvalbumin-positive interneurons (PV-INs) was found in the auditory cortex (AC) and hippocampal regions, which went hand in hand with reduced PV-labeling in neuropil domains and elevated activity-regulated cytoskeleton-associated protein (Arc/Arg3.1; here: Arc) levels in pyramidal neurons in these same regions. This immaturity in the inhibitory/excitatory balance of the AC and hippocampus was accompanied by elevated LTP, reduced (sound-induced) LTP/LTD adjustment, impaired learning, elevated anxiety, and deficits in social behavior, overall representing an autistic-like phenotype. Reduced tonic inhibitory strength and elevated spontaneous firing rates in dorsal cochlear nucleus (DCN) brainstem neurons in otherwise nearly normal hearing Bdnf(Pax2)KOs suggests that diminished fine-grained auditory-specific brainstem activity has hampered activity-driven integration of inhibitory networks of the AC in functional (hippocampal) circuits. This leads to an inability to scale hippocampal post-synapses during LTP/LTD plasticity. BDNF in Pax2-lineage descendants in lower brain regions should thus be considered as a novel candidate for contributing to the development of brain disorders, including autism.
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spelling pubmed-80330282021-04-10 Deletion of BDNF in Pax2 Lineage-Derived Interneuron Precursors in the Hindbrain Hampers the Proportion of Excitation/Inhibition, Learning, and Behavior Eckert, Philipp Marchetta, Philine Manthey, Marie K. Walter, Michael H. Jovanovic, Sasa Savitska, Daria Singer, Wibke Jacob, Michele H. Rüttiger, Lukas Schimmang, Thomas Milenkovic, Ivan Pilz, Peter K. D. Knipper, Marlies Front Mol Neurosci Neuroscience Numerous studies indicate that deficits in the proper integration or migration of specific GABAergic precursor cells from the subpallium to the cortex can lead to severe cognitive dysfunctions and neurodevelopmental pathogenesis linked to intellectual disabilities. A different set of GABAergic precursors cells that express Pax2 migrate to hindbrain regions, targeting, for example auditory or somatosensory brainstem regions. We demonstrate that the absence of BDNF in Pax2-lineage descendants of Bdnf(Pax2)KOs causes severe cognitive disabilities. In Bdnf(Pax2)KOs, a normal number of parvalbumin-positive interneurons (PV-INs) was found in the auditory cortex (AC) and hippocampal regions, which went hand in hand with reduced PV-labeling in neuropil domains and elevated activity-regulated cytoskeleton-associated protein (Arc/Arg3.1; here: Arc) levels in pyramidal neurons in these same regions. This immaturity in the inhibitory/excitatory balance of the AC and hippocampus was accompanied by elevated LTP, reduced (sound-induced) LTP/LTD adjustment, impaired learning, elevated anxiety, and deficits in social behavior, overall representing an autistic-like phenotype. Reduced tonic inhibitory strength and elevated spontaneous firing rates in dorsal cochlear nucleus (DCN) brainstem neurons in otherwise nearly normal hearing Bdnf(Pax2)KOs suggests that diminished fine-grained auditory-specific brainstem activity has hampered activity-driven integration of inhibitory networks of the AC in functional (hippocampal) circuits. This leads to an inability to scale hippocampal post-synapses during LTP/LTD plasticity. BDNF in Pax2-lineage descendants in lower brain regions should thus be considered as a novel candidate for contributing to the development of brain disorders, including autism. Frontiers Media S.A. 2021-03-26 /pmc/articles/PMC8033028/ /pubmed/33841098 http://dx.doi.org/10.3389/fnmol.2021.642679 Text en Copyright © 2021 Eckert, Marchetta, Manthey, Walter, Jovanovic, Savitska, Singer, Jacob, Rüttiger, Schimmang, Milenkovic, Pilz and Knipper. https://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 Neuroscience
Eckert, Philipp
Marchetta, Philine
Manthey, Marie K.
Walter, Michael H.
Jovanovic, Sasa
Savitska, Daria
Singer, Wibke
Jacob, Michele H.
Rüttiger, Lukas
Schimmang, Thomas
Milenkovic, Ivan
Pilz, Peter K. D.
Knipper, Marlies
Deletion of BDNF in Pax2 Lineage-Derived Interneuron Precursors in the Hindbrain Hampers the Proportion of Excitation/Inhibition, Learning, and Behavior
title Deletion of BDNF in Pax2 Lineage-Derived Interneuron Precursors in the Hindbrain Hampers the Proportion of Excitation/Inhibition, Learning, and Behavior
title_full Deletion of BDNF in Pax2 Lineage-Derived Interneuron Precursors in the Hindbrain Hampers the Proportion of Excitation/Inhibition, Learning, and Behavior
title_fullStr Deletion of BDNF in Pax2 Lineage-Derived Interneuron Precursors in the Hindbrain Hampers the Proportion of Excitation/Inhibition, Learning, and Behavior
title_full_unstemmed Deletion of BDNF in Pax2 Lineage-Derived Interneuron Precursors in the Hindbrain Hampers the Proportion of Excitation/Inhibition, Learning, and Behavior
title_short Deletion of BDNF in Pax2 Lineage-Derived Interneuron Precursors in the Hindbrain Hampers the Proportion of Excitation/Inhibition, Learning, and Behavior
title_sort deletion of bdnf in pax2 lineage-derived interneuron precursors in the hindbrain hampers the proportion of excitation/inhibition, learning, and behavior
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8033028/
https://www.ncbi.nlm.nih.gov/pubmed/33841098
http://dx.doi.org/10.3389/fnmol.2021.642679
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