Cargando…

Mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines

Neurotrypsin (NT) is a neuronal trypsin-like serine protease whose mutations cause severe mental retardation in humans. NT is activated in vitro by Hebbian-like conjunction of pre- and postsynaptic activities, which promotes the formation of dendritic filopodia via proteolytic cleavage of the proteo...

Descripción completa

Detalles Bibliográficos
Autores principales: Ferrer-Ferrer, Maura, Jia, Shaobo, Kaushik, Rahul, Schneeberg, Jenny, Figiel, Izabela, Aleshin, Stepan, Mironov, Andrey, Safari, Motahareh, Frischknecht, Renato, Wlodarczyk, Jakub, Senkov, Oleg, Dityatev, Alexander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer International Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9986217/
https://www.ncbi.nlm.nih.gov/pubmed/36871239
http://dx.doi.org/10.1007/s00018-023-04720-z
_version_ 1784901115064614912
author Ferrer-Ferrer, Maura
Jia, Shaobo
Kaushik, Rahul
Schneeberg, Jenny
Figiel, Izabela
Aleshin, Stepan
Mironov, Andrey
Safari, Motahareh
Frischknecht, Renato
Wlodarczyk, Jakub
Senkov, Oleg
Dityatev, Alexander
author_facet Ferrer-Ferrer, Maura
Jia, Shaobo
Kaushik, Rahul
Schneeberg, Jenny
Figiel, Izabela
Aleshin, Stepan
Mironov, Andrey
Safari, Motahareh
Frischknecht, Renato
Wlodarczyk, Jakub
Senkov, Oleg
Dityatev, Alexander
author_sort Ferrer-Ferrer, Maura
collection PubMed
description Neurotrypsin (NT) is a neuronal trypsin-like serine protease whose mutations cause severe mental retardation in humans. NT is activated in vitro by Hebbian-like conjunction of pre- and postsynaptic activities, which promotes the formation of dendritic filopodia via proteolytic cleavage of the proteoglycan agrin. Here, we investigated the functional importance of this mechanism for synaptic plasticity, learning, and extinction of memory. We report that juvenile neurotrypsin-deficient (NT(−/−)) mice exhibit impaired long-term potentiation induced by a spaced stimulation protocol designed to probe the generation of new filopodia and their conversion into functional synapses. Behaviorally, juvenile NT(−/−) mice show impaired contextual fear memory and have a sociability deficit. The latter persists in aged NT(−/−) mice, which, unlike juvenile mice, show normal recall but impaired extinction of contextual fear memories. Structurally, juvenile mutants exhibit reduced spine density in the CA1 region, fewer thin spines, and no modulation in the density of dendritic spines following fear conditioning and extinction in contrast to wild-type littermates. The head width of thin spines is reduced in both juvenile and aged NT(−/−) mice. In vivo delivery of adeno-associated virus expressing an NT-generated fragment of agrin, agrin-22, but not a shorter agrin-15, elevates the spine density in NT(−/−) mice. Moreover, agrin-22 co-aggregates with pre- and postsynaptic markers and increases the density and size of presynaptic boutons and presynaptic puncta, corroborating the view that agrin-22 supports the synaptic growth. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1007/s00018-023-04720-z.
format Online
Article
Text
id pubmed-9986217
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Springer International Publishing
record_format MEDLINE/PubMed
spelling pubmed-99862172023-03-07 Mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines Ferrer-Ferrer, Maura Jia, Shaobo Kaushik, Rahul Schneeberg, Jenny Figiel, Izabela Aleshin, Stepan Mironov, Andrey Safari, Motahareh Frischknecht, Renato Wlodarczyk, Jakub Senkov, Oleg Dityatev, Alexander Cell Mol Life Sci Original Article Neurotrypsin (NT) is a neuronal trypsin-like serine protease whose mutations cause severe mental retardation in humans. NT is activated in vitro by Hebbian-like conjunction of pre- and postsynaptic activities, which promotes the formation of dendritic filopodia via proteolytic cleavage of the proteoglycan agrin. Here, we investigated the functional importance of this mechanism for synaptic plasticity, learning, and extinction of memory. We report that juvenile neurotrypsin-deficient (NT(−/−)) mice exhibit impaired long-term potentiation induced by a spaced stimulation protocol designed to probe the generation of new filopodia and their conversion into functional synapses. Behaviorally, juvenile NT(−/−) mice show impaired contextual fear memory and have a sociability deficit. The latter persists in aged NT(−/−) mice, which, unlike juvenile mice, show normal recall but impaired extinction of contextual fear memories. Structurally, juvenile mutants exhibit reduced spine density in the CA1 region, fewer thin spines, and no modulation in the density of dendritic spines following fear conditioning and extinction in contrast to wild-type littermates. The head width of thin spines is reduced in both juvenile and aged NT(−/−) mice. In vivo delivery of adeno-associated virus expressing an NT-generated fragment of agrin, agrin-22, but not a shorter agrin-15, elevates the spine density in NT(−/−) mice. Moreover, agrin-22 co-aggregates with pre- and postsynaptic markers and increases the density and size of presynaptic boutons and presynaptic puncta, corroborating the view that agrin-22 supports the synaptic growth. SUPPLEMENTARY INFORMATION: The online version contains supplementary material available at 10.1007/s00018-023-04720-z. Springer International Publishing 2023-03-05 2023 /pmc/articles/PMC9986217/ /pubmed/36871239 http://dx.doi.org/10.1007/s00018-023-04720-z Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Original Article
Ferrer-Ferrer, Maura
Jia, Shaobo
Kaushik, Rahul
Schneeberg, Jenny
Figiel, Izabela
Aleshin, Stepan
Mironov, Andrey
Safari, Motahareh
Frischknecht, Renato
Wlodarczyk, Jakub
Senkov, Oleg
Dityatev, Alexander
Mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines
title Mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines
title_full Mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines
title_fullStr Mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines
title_full_unstemmed Mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines
title_short Mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines
title_sort mice deficient in synaptic protease neurotrypsin show impaired spaced long-term potentiation and blunted learning-induced modulation of dendritic spines
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9986217/
https://www.ncbi.nlm.nih.gov/pubmed/36871239
http://dx.doi.org/10.1007/s00018-023-04720-z
work_keys_str_mv AT ferrerferrermaura micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT jiashaobo micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT kaushikrahul micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT schneebergjenny micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT figielizabela micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT aleshinstepan micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT mironovandrey micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT safarimotahareh micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT frischknechtrenato micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT wlodarczykjakub micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT senkovoleg micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines
AT dityatevalexander micedeficientinsynapticproteaseneurotrypsinshowimpairedspacedlongtermpotentiationandbluntedlearninginducedmodulationofdendriticspines