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Two de novo GluN2B mutations affect multiple NMDAR-functions and instigate severe pediatric encephalopathy

The N-methyl-D-aspartate receptors (NMDARs; GluNRS) are glutamate receptors, commonly located at excitatory synapses. Mutations affecting receptor function often lead to devastating neurodevelopmental disorders. We have identified two toddlers with different heterozygous missense mutations of the sa...

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Autores principales: Kellner, Shai, Abbasi, Abeer, Carmi, Ido, Heinrich, Ronit, Garin-Shkolnik, Tali, Hershkovitz, Tova, Giladi, Moshe, Haitin, Yoni, Johannesen, Katrine M, Steensbjerre Møller, Rikke, Berlin, Shai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8260228/
https://www.ncbi.nlm.nih.gov/pubmed/34212862
http://dx.doi.org/10.7554/eLife.67555
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author Kellner, Shai
Abbasi, Abeer
Carmi, Ido
Heinrich, Ronit
Garin-Shkolnik, Tali
Hershkovitz, Tova
Giladi, Moshe
Haitin, Yoni
Johannesen, Katrine M
Steensbjerre Møller, Rikke
Berlin, Shai
author_facet Kellner, Shai
Abbasi, Abeer
Carmi, Ido
Heinrich, Ronit
Garin-Shkolnik, Tali
Hershkovitz, Tova
Giladi, Moshe
Haitin, Yoni
Johannesen, Katrine M
Steensbjerre Møller, Rikke
Berlin, Shai
author_sort Kellner, Shai
collection PubMed
description The N-methyl-D-aspartate receptors (NMDARs; GluNRS) are glutamate receptors, commonly located at excitatory synapses. Mutations affecting receptor function often lead to devastating neurodevelopmental disorders. We have identified two toddlers with different heterozygous missense mutations of the same, and highly conserved, glycine residue located in the ligand-binding-domain of GRIN2B: G689C and G689S. Structure simulations suggest severely impaired glutamate binding, which we confirm by functional analysis. Both variants show three orders of magnitude reductions in glutamate EC(50), with G689S exhibiting the largest reductions observed for GRIN2B (~2000-fold). Moreover, variants multimerize with, and upregulate, GluN2Bwt-subunits, thus engendering a strong dominant-negative effect on mixed channels. In neurons, overexpression of the variants instigates suppression of synaptic GluNRs. Lastly, while exploring spermine potentiation as a potential treatment, we discovered that the variants fail to respond due to G689’s novel role in proton-sensing. Together, we describe two unique variants with extreme effects on channel function. We employ protein-stability measures to explain why current (and future) LBD mutations in GluN2B primarily instigate Loss-of-Function.
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spelling pubmed-82602282021-07-07 Two de novo GluN2B mutations affect multiple NMDAR-functions and instigate severe pediatric encephalopathy Kellner, Shai Abbasi, Abeer Carmi, Ido Heinrich, Ronit Garin-Shkolnik, Tali Hershkovitz, Tova Giladi, Moshe Haitin, Yoni Johannesen, Katrine M Steensbjerre Møller, Rikke Berlin, Shai eLife Medicine The N-methyl-D-aspartate receptors (NMDARs; GluNRS) are glutamate receptors, commonly located at excitatory synapses. Mutations affecting receptor function often lead to devastating neurodevelopmental disorders. We have identified two toddlers with different heterozygous missense mutations of the same, and highly conserved, glycine residue located in the ligand-binding-domain of GRIN2B: G689C and G689S. Structure simulations suggest severely impaired glutamate binding, which we confirm by functional analysis. Both variants show three orders of magnitude reductions in glutamate EC(50), with G689S exhibiting the largest reductions observed for GRIN2B (~2000-fold). Moreover, variants multimerize with, and upregulate, GluN2Bwt-subunits, thus engendering a strong dominant-negative effect on mixed channels. In neurons, overexpression of the variants instigates suppression of synaptic GluNRs. Lastly, while exploring spermine potentiation as a potential treatment, we discovered that the variants fail to respond due to G689’s novel role in proton-sensing. Together, we describe two unique variants with extreme effects on channel function. We employ protein-stability measures to explain why current (and future) LBD mutations in GluN2B primarily instigate Loss-of-Function. eLife Sciences Publications, Ltd 2021-07-02 /pmc/articles/PMC8260228/ /pubmed/34212862 http://dx.doi.org/10.7554/eLife.67555 Text en © 2021, Kellner et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Medicine
Kellner, Shai
Abbasi, Abeer
Carmi, Ido
Heinrich, Ronit
Garin-Shkolnik, Tali
Hershkovitz, Tova
Giladi, Moshe
Haitin, Yoni
Johannesen, Katrine M
Steensbjerre Møller, Rikke
Berlin, Shai
Two de novo GluN2B mutations affect multiple NMDAR-functions and instigate severe pediatric encephalopathy
title Two de novo GluN2B mutations affect multiple NMDAR-functions and instigate severe pediatric encephalopathy
title_full Two de novo GluN2B mutations affect multiple NMDAR-functions and instigate severe pediatric encephalopathy
title_fullStr Two de novo GluN2B mutations affect multiple NMDAR-functions and instigate severe pediatric encephalopathy
title_full_unstemmed Two de novo GluN2B mutations affect multiple NMDAR-functions and instigate severe pediatric encephalopathy
title_short Two de novo GluN2B mutations affect multiple NMDAR-functions and instigate severe pediatric encephalopathy
title_sort two de novo glun2b mutations affect multiple nmdar-functions and instigate severe pediatric encephalopathy
topic Medicine
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8260228/
https://www.ncbi.nlm.nih.gov/pubmed/34212862
http://dx.doi.org/10.7554/eLife.67555
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