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Human genetic variants disrupt RGS14 nuclear shuttling and regulation of LTP in hippocampal neurons

The human genome contains vast genetic diversity as naturally occurring coding variants, yet the impact of these variants on protein function and physiology is poorly understood. RGS14 is a multifunctional signaling protein that suppresses synaptic plasticity in dendritic spines of hippocampal neuro...

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Autores principales: Squires, Katherine E., Gerber, Kyle J., Tillman, Matthew C., Lustberg, Daniel J., Montañez-Miranda, Carolina, Zhao, Meilan, Ramineni, Suneela, Scharer, Christopher D., Saha, Ramendra N., Shu, Feng-Jue, Schroeder, Jason P., Ortlund, Eric A., Weinshenker, David, Dudek, Serena M., Hepler, John R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7949046/
https://www.ncbi.nlm.nih.gov/pubmed/33410399
http://dx.doi.org/10.1074/jbc.RA120.016009
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author Squires, Katherine E.
Gerber, Kyle J.
Tillman, Matthew C.
Lustberg, Daniel J.
Montañez-Miranda, Carolina
Zhao, Meilan
Ramineni, Suneela
Scharer, Christopher D.
Saha, Ramendra N.
Shu, Feng-Jue
Schroeder, Jason P.
Ortlund, Eric A.
Weinshenker, David
Dudek, Serena M.
Hepler, John R.
author_facet Squires, Katherine E.
Gerber, Kyle J.
Tillman, Matthew C.
Lustberg, Daniel J.
Montañez-Miranda, Carolina
Zhao, Meilan
Ramineni, Suneela
Scharer, Christopher D.
Saha, Ramendra N.
Shu, Feng-Jue
Schroeder, Jason P.
Ortlund, Eric A.
Weinshenker, David
Dudek, Serena M.
Hepler, John R.
author_sort Squires, Katherine E.
collection PubMed
description The human genome contains vast genetic diversity as naturally occurring coding variants, yet the impact of these variants on protein function and physiology is poorly understood. RGS14 is a multifunctional signaling protein that suppresses synaptic plasticity in dendritic spines of hippocampal neurons. RGS14 also is a nucleocytoplasmic shuttling protein, suggesting that balanced nuclear import/export and dendritic spine localization are essential for RGS14 functions. We identified genetic variants L505R (LR) and R507Q (RQ) located within the nuclear export sequence (NES) of human RGS14. Here we report that RGS14 encoding LR or RQ profoundly impacts protein functions in hippocampal neurons. RGS14 membrane localization is regulated by binding Gαi-GDP, whereas RGS14 nuclear export is regulated by Exportin 1 (XPO1). Remarkably, LR and RQ variants disrupt RGS14 binding to Gαi1-GDP and XPO1, nucleocytoplasmic equilibrium, and capacity to inhibit long-term potentiation (LTP). Variant LR accumulates irreversibly in the nucleus, preventing RGS14 binding to Gαi1, localization to dendritic spines, and inhibitory actions on LTP induction, while variant RQ exhibits a mixed phenotype. When introduced into mice by CRISPR/Cas9, RGS14-LR protein expression was detected predominantly in the nuclei of neurons within hippocampus, central amygdala, piriform cortex, and striatum, brain regions associated with learning and synaptic plasticity. Whereas mice completely lacking RGS14 exhibit enhanced spatial learning, mice carrying variant LR exhibit normal spatial learning, suggesting that RGS14 may have distinct functions in the nucleus independent from those in dendrites and spines. These findings show that naturally occurring genetic variants can profoundly alter normal protein function, impacting physiology in unexpected ways.
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spelling pubmed-79490462021-03-19 Human genetic variants disrupt RGS14 nuclear shuttling and regulation of LTP in hippocampal neurons Squires, Katherine E. Gerber, Kyle J. Tillman, Matthew C. Lustberg, Daniel J. Montañez-Miranda, Carolina Zhao, Meilan Ramineni, Suneela Scharer, Christopher D. Saha, Ramendra N. Shu, Feng-Jue Schroeder, Jason P. Ortlund, Eric A. Weinshenker, David Dudek, Serena M. Hepler, John R. J Biol Chem Research Article The human genome contains vast genetic diversity as naturally occurring coding variants, yet the impact of these variants on protein function and physiology is poorly understood. RGS14 is a multifunctional signaling protein that suppresses synaptic plasticity in dendritic spines of hippocampal neurons. RGS14 also is a nucleocytoplasmic shuttling protein, suggesting that balanced nuclear import/export and dendritic spine localization are essential for RGS14 functions. We identified genetic variants L505R (LR) and R507Q (RQ) located within the nuclear export sequence (NES) of human RGS14. Here we report that RGS14 encoding LR or RQ profoundly impacts protein functions in hippocampal neurons. RGS14 membrane localization is regulated by binding Gαi-GDP, whereas RGS14 nuclear export is regulated by Exportin 1 (XPO1). Remarkably, LR and RQ variants disrupt RGS14 binding to Gαi1-GDP and XPO1, nucleocytoplasmic equilibrium, and capacity to inhibit long-term potentiation (LTP). Variant LR accumulates irreversibly in the nucleus, preventing RGS14 binding to Gαi1, localization to dendritic spines, and inhibitory actions on LTP induction, while variant RQ exhibits a mixed phenotype. When introduced into mice by CRISPR/Cas9, RGS14-LR protein expression was detected predominantly in the nuclei of neurons within hippocampus, central amygdala, piriform cortex, and striatum, brain regions associated with learning and synaptic plasticity. Whereas mice completely lacking RGS14 exhibit enhanced spatial learning, mice carrying variant LR exhibit normal spatial learning, suggesting that RGS14 may have distinct functions in the nucleus independent from those in dendrites and spines. These findings show that naturally occurring genetic variants can profoundly alter normal protein function, impacting physiology in unexpected ways. American Society for Biochemistry and Molecular Biology 2020-11-22 /pmc/articles/PMC7949046/ /pubmed/33410399 http://dx.doi.org/10.1074/jbc.RA120.016009 Text en © 2020 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Squires, Katherine E.
Gerber, Kyle J.
Tillman, Matthew C.
Lustberg, Daniel J.
Montañez-Miranda, Carolina
Zhao, Meilan
Ramineni, Suneela
Scharer, Christopher D.
Saha, Ramendra N.
Shu, Feng-Jue
Schroeder, Jason P.
Ortlund, Eric A.
Weinshenker, David
Dudek, Serena M.
Hepler, John R.
Human genetic variants disrupt RGS14 nuclear shuttling and regulation of LTP in hippocampal neurons
title Human genetic variants disrupt RGS14 nuclear shuttling and regulation of LTP in hippocampal neurons
title_full Human genetic variants disrupt RGS14 nuclear shuttling and regulation of LTP in hippocampal neurons
title_fullStr Human genetic variants disrupt RGS14 nuclear shuttling and regulation of LTP in hippocampal neurons
title_full_unstemmed Human genetic variants disrupt RGS14 nuclear shuttling and regulation of LTP in hippocampal neurons
title_short Human genetic variants disrupt RGS14 nuclear shuttling and regulation of LTP in hippocampal neurons
title_sort human genetic variants disrupt rgs14 nuclear shuttling and regulation of ltp in hippocampal neurons
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7949046/
https://www.ncbi.nlm.nih.gov/pubmed/33410399
http://dx.doi.org/10.1074/jbc.RA120.016009
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