Cargando…

Deletion of KIBRA, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro

Spines are small protrusions arising from dendrites that receive most excitatory synaptic input in the brain. Dendritic spines represent dynamic structures that undergo activity-dependent adaptations, for example, during synaptic plasticity. Alterations of spine morphology, changes of spine type rat...

Descripción completa

Detalles Bibliográficos
Autores principales: Blanque, Anja, Repetto, Daniele, Rohlmann, Astrid, Brockhaus, Johannes, Duning, Kerstin, Pavenstädt, Hermann, Wolff, Ilka, Missler, Markus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4335192/
https://www.ncbi.nlm.nih.gov/pubmed/25750616
http://dx.doi.org/10.3389/fnana.2015.00013
_version_ 1782358309607571456
author Blanque, Anja
Repetto, Daniele
Rohlmann, Astrid
Brockhaus, Johannes
Duning, Kerstin
Pavenstädt, Hermann
Wolff, Ilka
Missler, Markus
author_facet Blanque, Anja
Repetto, Daniele
Rohlmann, Astrid
Brockhaus, Johannes
Duning, Kerstin
Pavenstädt, Hermann
Wolff, Ilka
Missler, Markus
author_sort Blanque, Anja
collection PubMed
description Spines are small protrusions arising from dendrites that receive most excitatory synaptic input in the brain. Dendritic spines represent dynamic structures that undergo activity-dependent adaptations, for example, during synaptic plasticity. Alterations of spine morphology, changes of spine type ratios or density have consequently been found in paradigms of learning and memory, and accompany many neuropsychiatric disorders. Polymorphisms in the gene encoding KIBRA, a protein present in kidney and brain, are linked to memory performance and cognition in humans and mouse models. Deletion of KIBRA impairs long-term synaptic plasticity and postsynaptic receptor recycling but no information is available on the morphology of dendritic spines in null-mutant mice. Here, we directly examine the role of KIBRA in spinous synapses using knockout mice. Since KIBRA is normally highly expressed in neocortex and hippocampus at juvenile age, we analyze synapse morphology in intact tissue and in neuronal cultures from these brain regions. Quantification of different dendritic spine types in Golgi-impregnated sections and in transfected neurons coherently reveal a robust increase of filopodial-like long protrusions in the absence of KIBRA. While distribution of pre- and postsynaptic marker proteins, overall synapse ultrastructure and density of asymmetric contacts were remarkably normal, electron microscopy additionally uncovered less perforated synapses and spinules in knockout neurons. Thus, our results indicate that KIBRA is involved in the maintenance of normal ratios of spinous synapses, and may thus provide a structural correlate of altered cognitive functions when this memory-associated molecule is mutated.
format Online
Article
Text
id pubmed-4335192
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-43351922015-03-06 Deletion of KIBRA, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro Blanque, Anja Repetto, Daniele Rohlmann, Astrid Brockhaus, Johannes Duning, Kerstin Pavenstädt, Hermann Wolff, Ilka Missler, Markus Front Neuroanat Neuroscience Spines are small protrusions arising from dendrites that receive most excitatory synaptic input in the brain. Dendritic spines represent dynamic structures that undergo activity-dependent adaptations, for example, during synaptic plasticity. Alterations of spine morphology, changes of spine type ratios or density have consequently been found in paradigms of learning and memory, and accompany many neuropsychiatric disorders. Polymorphisms in the gene encoding KIBRA, a protein present in kidney and brain, are linked to memory performance and cognition in humans and mouse models. Deletion of KIBRA impairs long-term synaptic plasticity and postsynaptic receptor recycling but no information is available on the morphology of dendritic spines in null-mutant mice. Here, we directly examine the role of KIBRA in spinous synapses using knockout mice. Since KIBRA is normally highly expressed in neocortex and hippocampus at juvenile age, we analyze synapse morphology in intact tissue and in neuronal cultures from these brain regions. Quantification of different dendritic spine types in Golgi-impregnated sections and in transfected neurons coherently reveal a robust increase of filopodial-like long protrusions in the absence of KIBRA. While distribution of pre- and postsynaptic marker proteins, overall synapse ultrastructure and density of asymmetric contacts were remarkably normal, electron microscopy additionally uncovered less perforated synapses and spinules in knockout neurons. Thus, our results indicate that KIBRA is involved in the maintenance of normal ratios of spinous synapses, and may thus provide a structural correlate of altered cognitive functions when this memory-associated molecule is mutated. Frontiers Media S.A. 2015-02-20 /pmc/articles/PMC4335192/ /pubmed/25750616 http://dx.doi.org/10.3389/fnana.2015.00013 Text en Copyright © 2015 Blanque, Repetto, Rohlmann, Brockhaus, Duning, Pavenstädt, Wolff and Missler. http://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 and reproduction in other forums is permitted, provided the original author(s) or licensor 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
Blanque, Anja
Repetto, Daniele
Rohlmann, Astrid
Brockhaus, Johannes
Duning, Kerstin
Pavenstädt, Hermann
Wolff, Ilka
Missler, Markus
Deletion of KIBRA, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro
title Deletion of KIBRA, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro
title_full Deletion of KIBRA, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro
title_fullStr Deletion of KIBRA, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro
title_full_unstemmed Deletion of KIBRA, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro
title_short Deletion of KIBRA, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro
title_sort deletion of kibra, protein expressed in kidney and brain, increases filopodial-like long dendritic spines in neocortical and hippocampal neurons in vivo and in vitro
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4335192/
https://www.ncbi.nlm.nih.gov/pubmed/25750616
http://dx.doi.org/10.3389/fnana.2015.00013
work_keys_str_mv AT blanqueanja deletionofkibraproteinexpressedinkidneyandbrainincreasesfilopodiallikelongdendriticspinesinneocorticalandhippocampalneuronsinvivoandinvitro
AT repettodaniele deletionofkibraproteinexpressedinkidneyandbrainincreasesfilopodiallikelongdendriticspinesinneocorticalandhippocampalneuronsinvivoandinvitro
AT rohlmannastrid deletionofkibraproteinexpressedinkidneyandbrainincreasesfilopodiallikelongdendriticspinesinneocorticalandhippocampalneuronsinvivoandinvitro
AT brockhausjohannes deletionofkibraproteinexpressedinkidneyandbrainincreasesfilopodiallikelongdendriticspinesinneocorticalandhippocampalneuronsinvivoandinvitro
AT duningkerstin deletionofkibraproteinexpressedinkidneyandbrainincreasesfilopodiallikelongdendriticspinesinneocorticalandhippocampalneuronsinvivoandinvitro
AT pavenstadthermann deletionofkibraproteinexpressedinkidneyandbrainincreasesfilopodiallikelongdendriticspinesinneocorticalandhippocampalneuronsinvivoandinvitro
AT wolffilka deletionofkibraproteinexpressedinkidneyandbrainincreasesfilopodiallikelongdendriticspinesinneocorticalandhippocampalneuronsinvivoandinvitro
AT misslermarkus deletionofkibraproteinexpressedinkidneyandbrainincreasesfilopodiallikelongdendriticspinesinneocorticalandhippocampalneuronsinvivoandinvitro