Cargando…

Increased glycine contributes to synaptic dysfunction and early mortality in Nprl2 seizure model

Targeted therapies for epilepsies associated with the mTORC1 signaling negative regulator GATOR1 are lacking. NPRL2 is a subunit of the GATOR1 complex and mutations in GATOR1 subunits, including NPRL2, are associated with epilepsy. To delineate the mechanisms underlying NPRL2-related epilepsies, we...

Descripción completa

Detalles Bibliográficos
Autores principales: Dentel, Brianne, Angeles-Perez, Lidiette, Ren, Chongyu, Jakkamsetti, Vikram, Holley, Andrew J., Caballero, Daniel, Oh, Emily, Gibson, Jay, Pascual, Juan M., Huber, Kimberly M., Tu, Benjamin P., Tsai, Peter T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9118754/
https://www.ncbi.nlm.nih.gov/pubmed/35602938
http://dx.doi.org/10.1016/j.isci.2022.104334
_version_ 1784710565515493376
author Dentel, Brianne
Angeles-Perez, Lidiette
Ren, Chongyu
Jakkamsetti, Vikram
Holley, Andrew J.
Caballero, Daniel
Oh, Emily
Gibson, Jay
Pascual, Juan M.
Huber, Kimberly M.
Tu, Benjamin P.
Tsai, Peter T.
author_facet Dentel, Brianne
Angeles-Perez, Lidiette
Ren, Chongyu
Jakkamsetti, Vikram
Holley, Andrew J.
Caballero, Daniel
Oh, Emily
Gibson, Jay
Pascual, Juan M.
Huber, Kimberly M.
Tu, Benjamin P.
Tsai, Peter T.
author_sort Dentel, Brianne
collection PubMed
description Targeted therapies for epilepsies associated with the mTORC1 signaling negative regulator GATOR1 are lacking. NPRL2 is a subunit of the GATOR1 complex and mutations in GATOR1 subunits, including NPRL2, are associated with epilepsy. To delineate the mechanisms underlying NPRL2-related epilepsies, we created a mouse (Mus musculus) model with neocortical loss of Nprl2. Mutant mice have increased mTORC1 signaling and exhibit spontaneous seizures. They also display abnormal synaptic function characterized by increased evoked and spontaneous EPSC and decreased evoked and spontaneous IPSC frequencies, respectively. Proteomic and metabolomics studies of Nprl2 mutants revealed alterations in known epilepsy-implicated proteins and metabolic pathways, including increases in the neurotransmitter, glycine. Furthermore, glycine actions on the NMDA receptor contribute to the electrophysiological and survival phenotypes of these mice. Taken together, in this neuronal Nprl2 model, we delineate underlying molecular, metabolic, and electrophysiological mechanisms contributing to mTORC1-related epilepsy, providing potential therapeutic targets for epilepsy.
format Online
Article
Text
id pubmed-9118754
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-91187542022-05-20 Increased glycine contributes to synaptic dysfunction and early mortality in Nprl2 seizure model Dentel, Brianne Angeles-Perez, Lidiette Ren, Chongyu Jakkamsetti, Vikram Holley, Andrew J. Caballero, Daniel Oh, Emily Gibson, Jay Pascual, Juan M. Huber, Kimberly M. Tu, Benjamin P. Tsai, Peter T. iScience Article Targeted therapies for epilepsies associated with the mTORC1 signaling negative regulator GATOR1 are lacking. NPRL2 is a subunit of the GATOR1 complex and mutations in GATOR1 subunits, including NPRL2, are associated with epilepsy. To delineate the mechanisms underlying NPRL2-related epilepsies, we created a mouse (Mus musculus) model with neocortical loss of Nprl2. Mutant mice have increased mTORC1 signaling and exhibit spontaneous seizures. They also display abnormal synaptic function characterized by increased evoked and spontaneous EPSC and decreased evoked and spontaneous IPSC frequencies, respectively. Proteomic and metabolomics studies of Nprl2 mutants revealed alterations in known epilepsy-implicated proteins and metabolic pathways, including increases in the neurotransmitter, glycine. Furthermore, glycine actions on the NMDA receptor contribute to the electrophysiological and survival phenotypes of these mice. Taken together, in this neuronal Nprl2 model, we delineate underlying molecular, metabolic, and electrophysiological mechanisms contributing to mTORC1-related epilepsy, providing potential therapeutic targets for epilepsy. Elsevier 2022-04-29 /pmc/articles/PMC9118754/ /pubmed/35602938 http://dx.doi.org/10.1016/j.isci.2022.104334 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Dentel, Brianne
Angeles-Perez, Lidiette
Ren, Chongyu
Jakkamsetti, Vikram
Holley, Andrew J.
Caballero, Daniel
Oh, Emily
Gibson, Jay
Pascual, Juan M.
Huber, Kimberly M.
Tu, Benjamin P.
Tsai, Peter T.
Increased glycine contributes to synaptic dysfunction and early mortality in Nprl2 seizure model
title Increased glycine contributes to synaptic dysfunction and early mortality in Nprl2 seizure model
title_full Increased glycine contributes to synaptic dysfunction and early mortality in Nprl2 seizure model
title_fullStr Increased glycine contributes to synaptic dysfunction and early mortality in Nprl2 seizure model
title_full_unstemmed Increased glycine contributes to synaptic dysfunction and early mortality in Nprl2 seizure model
title_short Increased glycine contributes to synaptic dysfunction and early mortality in Nprl2 seizure model
title_sort increased glycine contributes to synaptic dysfunction and early mortality in nprl2 seizure model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9118754/
https://www.ncbi.nlm.nih.gov/pubmed/35602938
http://dx.doi.org/10.1016/j.isci.2022.104334
work_keys_str_mv AT dentelbrianne increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT angelesperezlidiette increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT renchongyu increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT jakkamsettivikram increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT holleyandrewj increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT caballerodaniel increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT ohemily increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT gibsonjay increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT pascualjuanm increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT huberkimberlym increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT tubenjaminp increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel
AT tsaipetert increasedglycinecontributestosynapticdysfunctionandearlymortalityinnprl2seizuremodel