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Hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure

Estrogen receptor a (ERa) signaling in the ventromedial hypothalamus (VMH) contributes to energy homeostasis by modulating physical activity and thermogenesis. However, the precise neuronal populations involved remain undefined. Here, we describe six neuronal populations in the mouse VMH by using si...

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Autores principales: van Veen, J. Edward, Kammel, Laura G., Bunda, Patricia C., Shum, Michael, Reid, Michelle S., Massa, Megan G., Arneson, Douglas, Park, Jae W., Zhang, Zhi, Joseph, Alexia M., Hrncir, Haley, Liesa, Marc, Arnold, Arthur P., Yang, Xia, Correa, Stephanie M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7202561/
https://www.ncbi.nlm.nih.gov/pubmed/32377634
http://dx.doi.org/10.1038/s42255-020-0189-6
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author van Veen, J. Edward
Kammel, Laura G.
Bunda, Patricia C.
Shum, Michael
Reid, Michelle S.
Massa, Megan G.
Arneson, Douglas
Park, Jae W.
Zhang, Zhi
Joseph, Alexia M.
Hrncir, Haley
Liesa, Marc
Arnold, Arthur P.
Yang, Xia
Correa, Stephanie M.
author_facet van Veen, J. Edward
Kammel, Laura G.
Bunda, Patricia C.
Shum, Michael
Reid, Michelle S.
Massa, Megan G.
Arneson, Douglas
Park, Jae W.
Zhang, Zhi
Joseph, Alexia M.
Hrncir, Haley
Liesa, Marc
Arnold, Arthur P.
Yang, Xia
Correa, Stephanie M.
author_sort van Veen, J. Edward
collection PubMed
description Estrogen receptor a (ERa) signaling in the ventromedial hypothalamus (VMH) contributes to energy homeostasis by modulating physical activity and thermogenesis. However, the precise neuronal populations involved remain undefined. Here, we describe six neuronal populations in the mouse VMH by using single-cell RNA transcriptomics and in situ hybridization. ERa is enriched in populations showing sex biased expression of reprimo (Rprm), tachykinin 1 (Tac1), and prodynorphin (Pdyn). Female biased expression of Tac1 and Rprm is patterned by ERa-dependent repression during male development, whereas male biased expression of Pdyn is maintained by circulating testicular hormone in adulthood. Chemogenetic activation of ERa positive VMH neurons stimulates heat generation and movement in both sexes. However, silencing Rprm gene function increases core temperature selectively in females and ectopic Rprm expression in males is associated with reduced core temperature. Together these findings reveal a role for Rprm in temperature regulation and ERa in the masculinization of neuron populations that underlie energy expenditure.
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spelling pubmed-72025612020-10-01 Hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure van Veen, J. Edward Kammel, Laura G. Bunda, Patricia C. Shum, Michael Reid, Michelle S. Massa, Megan G. Arneson, Douglas Park, Jae W. Zhang, Zhi Joseph, Alexia M. Hrncir, Haley Liesa, Marc Arnold, Arthur P. Yang, Xia Correa, Stephanie M. Nat Metab Article Estrogen receptor a (ERa) signaling in the ventromedial hypothalamus (VMH) contributes to energy homeostasis by modulating physical activity and thermogenesis. However, the precise neuronal populations involved remain undefined. Here, we describe six neuronal populations in the mouse VMH by using single-cell RNA transcriptomics and in situ hybridization. ERa is enriched in populations showing sex biased expression of reprimo (Rprm), tachykinin 1 (Tac1), and prodynorphin (Pdyn). Female biased expression of Tac1 and Rprm is patterned by ERa-dependent repression during male development, whereas male biased expression of Pdyn is maintained by circulating testicular hormone in adulthood. Chemogenetic activation of ERa positive VMH neurons stimulates heat generation and movement in both sexes. However, silencing Rprm gene function increases core temperature selectively in females and ectopic Rprm expression in males is associated with reduced core temperature. Together these findings reveal a role for Rprm in temperature regulation and ERa in the masculinization of neuron populations that underlie energy expenditure. 2020-04-13 2020-04 /pmc/articles/PMC7202561/ /pubmed/32377634 http://dx.doi.org/10.1038/s42255-020-0189-6 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
van Veen, J. Edward
Kammel, Laura G.
Bunda, Patricia C.
Shum, Michael
Reid, Michelle S.
Massa, Megan G.
Arneson, Douglas
Park, Jae W.
Zhang, Zhi
Joseph, Alexia M.
Hrncir, Haley
Liesa, Marc
Arnold, Arthur P.
Yang, Xia
Correa, Stephanie M.
Hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure
title Hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure
title_full Hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure
title_fullStr Hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure
title_full_unstemmed Hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure
title_short Hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure
title_sort hypothalamic estrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7202561/
https://www.ncbi.nlm.nih.gov/pubmed/32377634
http://dx.doi.org/10.1038/s42255-020-0189-6
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