Cargando…

Reduced Vglut2/Slc17a6 Gene Expression Levels throughout the Mouse Subthalamic Nucleus Cause Cell Loss and Structural Disorganization Followed by Increased Motor Activity and Decreased Sugar Consumption

The subthalamic nucleus (STN) plays a central role in motor, cognitive, and affective behavior. Deep brain stimulation (DBS) of the STN is the most common surgical intervention for advanced Parkinson’s disease (PD), and STN has lately gained attention as target for DBS in neuropsychiatric disorders,...

Descripción completa

Detalles Bibliográficos
Autores principales: Schweizer, Nadine, Viereckel, Thomas, Smith-Anttila, Casey J.A., Nordenankar, Karin, Arvidsson, Emma, Mahmoudi, Souha, Zampera, André, Wärner Jonsson, Hanna, Bergquist, Jonas, Lévesque, Daniel, Konradsson-Geuken, Åsa, Andersson, Malin, Dumas, Sylvie, Wallén-Mackenzie, Åsa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5041164/
https://www.ncbi.nlm.nih.gov/pubmed/27699212
http://dx.doi.org/10.1523/ENEURO.0264-16.2016
_version_ 1782456358759563264
author Schweizer, Nadine
Viereckel, Thomas
Smith-Anttila, Casey J.A.
Nordenankar, Karin
Arvidsson, Emma
Mahmoudi, Souha
Zampera, André
Wärner Jonsson, Hanna
Bergquist, Jonas
Lévesque, Daniel
Konradsson-Geuken, Åsa
Andersson, Malin
Dumas, Sylvie
Wallén-Mackenzie, Åsa
author_facet Schweizer, Nadine
Viereckel, Thomas
Smith-Anttila, Casey J.A.
Nordenankar, Karin
Arvidsson, Emma
Mahmoudi, Souha
Zampera, André
Wärner Jonsson, Hanna
Bergquist, Jonas
Lévesque, Daniel
Konradsson-Geuken, Åsa
Andersson, Malin
Dumas, Sylvie
Wallén-Mackenzie, Åsa
author_sort Schweizer, Nadine
collection PubMed
description The subthalamic nucleus (STN) plays a central role in motor, cognitive, and affective behavior. Deep brain stimulation (DBS) of the STN is the most common surgical intervention for advanced Parkinson’s disease (PD), and STN has lately gained attention as target for DBS in neuropsychiatric disorders, including obsessive compulsive disorder, eating disorders, and addiction. Animal studies using STN-DBS, lesioning, or inactivation of STN neurons have been used extensively alongside clinical studies to unravel the structural organization, circuitry, and function of the STN. Recent studies in rodent STN models have exposed different roles for STN neurons in reward-related functions. We have previously shown that the majority of STN neurons express the vesicular glutamate transporter 2 gene (Vglut2/Slc17a6) and that reduction of Vglut2 mRNA levels within the STN of mice [conditional knockout (cKO)] causes reduced postsynaptic activity and behavioral hyperlocomotion. The cKO mice showed less interest in fatty rewards, which motivated analysis of reward-response. The current results demonstrate decreased sugar consumption and strong rearing behavior, whereas biochemical analyses show altered dopaminergic and peptidergic activity in the striatum. The behavioral alterations were in fact correlated with opposite effects in the dorsal versus the ventral striatum. Significant cell loss and disorganization of the STN structure was identified, which likely accounts for the observed alterations. Rare genetic variants of the human VGLUT2 gene exist, and this study shows that reduced Vglut2/Slc17a6 gene expression levels exclusively within the STN of mice is sufficient to cause strong modifications in both the STN and the mesostriatal dopamine system.
format Online
Article
Text
id pubmed-5041164
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Society for Neuroscience
record_format MEDLINE/PubMed
spelling pubmed-50411642016-10-03 Reduced Vglut2/Slc17a6 Gene Expression Levels throughout the Mouse Subthalamic Nucleus Cause Cell Loss and Structural Disorganization Followed by Increased Motor Activity and Decreased Sugar Consumption Schweizer, Nadine Viereckel, Thomas Smith-Anttila, Casey J.A. Nordenankar, Karin Arvidsson, Emma Mahmoudi, Souha Zampera, André Wärner Jonsson, Hanna Bergquist, Jonas Lévesque, Daniel Konradsson-Geuken, Åsa Andersson, Malin Dumas, Sylvie Wallén-Mackenzie, Åsa eNeuro New Research The subthalamic nucleus (STN) plays a central role in motor, cognitive, and affective behavior. Deep brain stimulation (DBS) of the STN is the most common surgical intervention for advanced Parkinson’s disease (PD), and STN has lately gained attention as target for DBS in neuropsychiatric disorders, including obsessive compulsive disorder, eating disorders, and addiction. Animal studies using STN-DBS, lesioning, or inactivation of STN neurons have been used extensively alongside clinical studies to unravel the structural organization, circuitry, and function of the STN. Recent studies in rodent STN models have exposed different roles for STN neurons in reward-related functions. We have previously shown that the majority of STN neurons express the vesicular glutamate transporter 2 gene (Vglut2/Slc17a6) and that reduction of Vglut2 mRNA levels within the STN of mice [conditional knockout (cKO)] causes reduced postsynaptic activity and behavioral hyperlocomotion. The cKO mice showed less interest in fatty rewards, which motivated analysis of reward-response. The current results demonstrate decreased sugar consumption and strong rearing behavior, whereas biochemical analyses show altered dopaminergic and peptidergic activity in the striatum. The behavioral alterations were in fact correlated with opposite effects in the dorsal versus the ventral striatum. Significant cell loss and disorganization of the STN structure was identified, which likely accounts for the observed alterations. Rare genetic variants of the human VGLUT2 gene exist, and this study shows that reduced Vglut2/Slc17a6 gene expression levels exclusively within the STN of mice is sufficient to cause strong modifications in both the STN and the mesostriatal dopamine system. Society for Neuroscience 2016-09-29 /pmc/articles/PMC5041164/ /pubmed/27699212 http://dx.doi.org/10.1523/ENEURO.0264-16.2016 Text en Copyright © 2016 Schweizer et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle New Research
Schweizer, Nadine
Viereckel, Thomas
Smith-Anttila, Casey J.A.
Nordenankar, Karin
Arvidsson, Emma
Mahmoudi, Souha
Zampera, André
Wärner Jonsson, Hanna
Bergquist, Jonas
Lévesque, Daniel
Konradsson-Geuken, Åsa
Andersson, Malin
Dumas, Sylvie
Wallén-Mackenzie, Åsa
Reduced Vglut2/Slc17a6 Gene Expression Levels throughout the Mouse Subthalamic Nucleus Cause Cell Loss and Structural Disorganization Followed by Increased Motor Activity and Decreased Sugar Consumption
title Reduced Vglut2/Slc17a6 Gene Expression Levels throughout the Mouse Subthalamic Nucleus Cause Cell Loss and Structural Disorganization Followed by Increased Motor Activity and Decreased Sugar Consumption
title_full Reduced Vglut2/Slc17a6 Gene Expression Levels throughout the Mouse Subthalamic Nucleus Cause Cell Loss and Structural Disorganization Followed by Increased Motor Activity and Decreased Sugar Consumption
title_fullStr Reduced Vglut2/Slc17a6 Gene Expression Levels throughout the Mouse Subthalamic Nucleus Cause Cell Loss and Structural Disorganization Followed by Increased Motor Activity and Decreased Sugar Consumption
title_full_unstemmed Reduced Vglut2/Slc17a6 Gene Expression Levels throughout the Mouse Subthalamic Nucleus Cause Cell Loss and Structural Disorganization Followed by Increased Motor Activity and Decreased Sugar Consumption
title_short Reduced Vglut2/Slc17a6 Gene Expression Levels throughout the Mouse Subthalamic Nucleus Cause Cell Loss and Structural Disorganization Followed by Increased Motor Activity and Decreased Sugar Consumption
title_sort reduced vglut2/slc17a6 gene expression levels throughout the mouse subthalamic nucleus cause cell loss and structural disorganization followed by increased motor activity and decreased sugar consumption
topic New Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5041164/
https://www.ncbi.nlm.nih.gov/pubmed/27699212
http://dx.doi.org/10.1523/ENEURO.0264-16.2016
work_keys_str_mv AT schweizernadine reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT viereckelthomas reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT smithanttilacaseyja reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT nordenankarkarin reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT arvidssonemma reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT mahmoudisouha reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT zamperaandre reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT warnerjonssonhanna reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT bergquistjonas reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT levesquedaniel reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT konradssongeukenasa reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT anderssonmalin reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT dumassylvie reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption
AT wallenmackenzieasa reducedvglut2slc17a6geneexpressionlevelsthroughoutthemousesubthalamicnucleuscausecelllossandstructuraldisorganizationfollowedbyincreasedmotoractivityanddecreasedsugarconsumption