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Hypothalamic Protein Kinase C Regulates Glucose Production

OBJECTIVE—A selective rise in hypothalamic lipid metabolism and the subsequent activation of SUR1/Kir6.2 ATP-sensitive K(+) (K(ATP)) channels inhibit hepatic glucose production. The mechanisms that link the ability of hypothalamic lipid metabolism to the activation of K(ATP) channels remain unknown....

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Autores principales: Ross, Rachel, Wang, Penny Y.T., Chari, Madhu, Lam, Carol K.L., Caspi, Liora, Ono, Hiraku, Muse, Evan D., Li, Xiaosong, Gutierrez-Juarez, Roger, Light, Peter E., Schwartz, Gary J., Rossetti, Luciano, Lam, Tony K.T.
Formato: Texto
Lenguaje:English
Publicado: American Diabetes Association 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2494694/
https://www.ncbi.nlm.nih.gov/pubmed/18511848
http://dx.doi.org/10.2337/db08-0206
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author Ross, Rachel
Wang, Penny Y.T.
Chari, Madhu
Lam, Carol K.L.
Caspi, Liora
Ono, Hiraku
Muse, Evan D.
Li, Xiaosong
Gutierrez-Juarez, Roger
Light, Peter E.
Schwartz, Gary J.
Rossetti, Luciano
Lam, Tony K.T.
author_facet Ross, Rachel
Wang, Penny Y.T.
Chari, Madhu
Lam, Carol K.L.
Caspi, Liora
Ono, Hiraku
Muse, Evan D.
Li, Xiaosong
Gutierrez-Juarez, Roger
Light, Peter E.
Schwartz, Gary J.
Rossetti, Luciano
Lam, Tony K.T.
author_sort Ross, Rachel
collection PubMed
description OBJECTIVE—A selective rise in hypothalamic lipid metabolism and the subsequent activation of SUR1/Kir6.2 ATP-sensitive K(+) (K(ATP)) channels inhibit hepatic glucose production. The mechanisms that link the ability of hypothalamic lipid metabolism to the activation of K(ATP) channels remain unknown. RESEARCH DESIGN AND METHODS—To examine whether hypothalamic protein kinase C (PKC) mediates the ability of central nervous system lipids to activate K(ATP) channels and regulate glucose production in normal rodents, we first activated hypothalamic PKC in the absence or presence of K(ATP) channel inhibition. We then inhibited hypothalamic PKC in the presence of lipids. Tracer-dilution methodology in combination with the pancreatic clamp technique was used to assess the effect of hypothalamic administrations on glucose metabolism in vivo. RESULTS—We first reported that direct activation of hypothalamic PKC via direct hypothalamic delivery of PKC activator 1-oleoyl-2-acetyl-sn-glycerol (OAG) suppressed glucose production. Coadministration of hypothalamic PKC-δ inhibitor rottlerin with OAG prevented the ability of OAG to activate PKC-δ and lower glucose production. Furthermore, hypothalamic dominant-negative Kir6.2 expression or the delivery of the K(ATP) channel blocker glibenclamide abolished the glucose production-lowering effects of OAG. Finally, inhibition of hypothalamic PKC eliminated the ability of lipids to lower glucose production. CONCLUSIONS—These studies indicate that hypothalamic PKC activation is sufficient and necessary for lowering glucose production.
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spelling pubmed-24946942009-08-01 Hypothalamic Protein Kinase C Regulates Glucose Production Ross, Rachel Wang, Penny Y.T. Chari, Madhu Lam, Carol K.L. Caspi, Liora Ono, Hiraku Muse, Evan D. Li, Xiaosong Gutierrez-Juarez, Roger Light, Peter E. Schwartz, Gary J. Rossetti, Luciano Lam, Tony K.T. Diabetes Metabolism OBJECTIVE—A selective rise in hypothalamic lipid metabolism and the subsequent activation of SUR1/Kir6.2 ATP-sensitive K(+) (K(ATP)) channels inhibit hepatic glucose production. The mechanisms that link the ability of hypothalamic lipid metabolism to the activation of K(ATP) channels remain unknown. RESEARCH DESIGN AND METHODS—To examine whether hypothalamic protein kinase C (PKC) mediates the ability of central nervous system lipids to activate K(ATP) channels and regulate glucose production in normal rodents, we first activated hypothalamic PKC in the absence or presence of K(ATP) channel inhibition. We then inhibited hypothalamic PKC in the presence of lipids. Tracer-dilution methodology in combination with the pancreatic clamp technique was used to assess the effect of hypothalamic administrations on glucose metabolism in vivo. RESULTS—We first reported that direct activation of hypothalamic PKC via direct hypothalamic delivery of PKC activator 1-oleoyl-2-acetyl-sn-glycerol (OAG) suppressed glucose production. Coadministration of hypothalamic PKC-δ inhibitor rottlerin with OAG prevented the ability of OAG to activate PKC-δ and lower glucose production. Furthermore, hypothalamic dominant-negative Kir6.2 expression or the delivery of the K(ATP) channel blocker glibenclamide abolished the glucose production-lowering effects of OAG. Finally, inhibition of hypothalamic PKC eliminated the ability of lipids to lower glucose production. CONCLUSIONS—These studies indicate that hypothalamic PKC activation is sufficient and necessary for lowering glucose production. American Diabetes Association 2008-08 /pmc/articles/PMC2494694/ /pubmed/18511848 http://dx.doi.org/10.2337/db08-0206 Text en Copyright © 2008, American Diabetes Association Readers may use this article as long as the work is properly cited, the use is educational and not for profit, and the work is not altered. See http://creativecommons.org/licenses/by-nc-nd/3.0/ for details.
spellingShingle Metabolism
Ross, Rachel
Wang, Penny Y.T.
Chari, Madhu
Lam, Carol K.L.
Caspi, Liora
Ono, Hiraku
Muse, Evan D.
Li, Xiaosong
Gutierrez-Juarez, Roger
Light, Peter E.
Schwartz, Gary J.
Rossetti, Luciano
Lam, Tony K.T.
Hypothalamic Protein Kinase C Regulates Glucose Production
title Hypothalamic Protein Kinase C Regulates Glucose Production
title_full Hypothalamic Protein Kinase C Regulates Glucose Production
title_fullStr Hypothalamic Protein Kinase C Regulates Glucose Production
title_full_unstemmed Hypothalamic Protein Kinase C Regulates Glucose Production
title_short Hypothalamic Protein Kinase C Regulates Glucose Production
title_sort hypothalamic protein kinase c regulates glucose production
topic Metabolism
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2494694/
https://www.ncbi.nlm.nih.gov/pubmed/18511848
http://dx.doi.org/10.2337/db08-0206
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