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The Brain–to–Pancreatic Islet Neuronal Map Reveals Differential Glucose Regulation From Distinct Hypothalamic Regions

The brain influences glucose homeostasis, partly by supplemental control over insulin and glucagon secretion. Without this central regulation, diabetes and its complications can ensue. Yet, the neuronal network linking to pancreatic islets has never been fully mapped. Here, we refine this map using...

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Autores principales: Rosario, Wilfredo, Singh, Inderroop, Wautlet, Arnaud, Patterson, Christa, Flak, Jonathan, Becker, Thomas C., Ali, Almas, Tamarina, Natalia, Philipson, Louis H., Enquist, Lynn W., Myers, Martin G., Rhodes, Christopher J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5001176/
https://www.ncbi.nlm.nih.gov/pubmed/27207534
http://dx.doi.org/10.2337/db15-0629
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author Rosario, Wilfredo
Singh, Inderroop
Wautlet, Arnaud
Patterson, Christa
Flak, Jonathan
Becker, Thomas C.
Ali, Almas
Tamarina, Natalia
Philipson, Louis H.
Enquist, Lynn W.
Myers, Martin G.
Rhodes, Christopher J.
author_facet Rosario, Wilfredo
Singh, Inderroop
Wautlet, Arnaud
Patterson, Christa
Flak, Jonathan
Becker, Thomas C.
Ali, Almas
Tamarina, Natalia
Philipson, Louis H.
Enquist, Lynn W.
Myers, Martin G.
Rhodes, Christopher J.
author_sort Rosario, Wilfredo
collection PubMed
description The brain influences glucose homeostasis, partly by supplemental control over insulin and glucagon secretion. Without this central regulation, diabetes and its complications can ensue. Yet, the neuronal network linking to pancreatic islets has never been fully mapped. Here, we refine this map using pseudorabies virus (PRV) retrograde tracing, indicating that the pancreatic islets are innervated by efferent circuits that emanate from the hypothalamus. We found that the hypothalamic arcuate nucleus (ARC), ventromedial nucleus (VMN), and lateral hypothalamic area (LHA) significantly overlap PRV and the physiological glucose-sensing enzyme glucokinase. Then, experimentally lowering glucose sensing, specifically in the ARC, resulted in glucose intolerance due to deficient insulin secretion and no significant effect in the VMN, but in the LHA it resulted in a lowering of the glucose threshold that improved glucose tolerance and/or improved insulin sensitivity, with an exaggerated counter-regulatory response for glucagon secretion. No significant effect on insulin sensitivity or metabolic homeostasis was noted. Thus, these data reveal novel direct neuronal effects on pancreatic islets and also render a functional validation of the brain-to-islet neuronal map. They also demonstrate that distinct regions of the hypothalamus differentially control insulin and glucagon secretion, potentially in partnership to help maintain glucose homeostasis and guard against hypoglycemia.
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spelling pubmed-50011762017-09-01 The Brain–to–Pancreatic Islet Neuronal Map Reveals Differential Glucose Regulation From Distinct Hypothalamic Regions Rosario, Wilfredo Singh, Inderroop Wautlet, Arnaud Patterson, Christa Flak, Jonathan Becker, Thomas C. Ali, Almas Tamarina, Natalia Philipson, Louis H. Enquist, Lynn W. Myers, Martin G. Rhodes, Christopher J. Diabetes Islet Studies The brain influences glucose homeostasis, partly by supplemental control over insulin and glucagon secretion. Without this central regulation, diabetes and its complications can ensue. Yet, the neuronal network linking to pancreatic islets has never been fully mapped. Here, we refine this map using pseudorabies virus (PRV) retrograde tracing, indicating that the pancreatic islets are innervated by efferent circuits that emanate from the hypothalamus. We found that the hypothalamic arcuate nucleus (ARC), ventromedial nucleus (VMN), and lateral hypothalamic area (LHA) significantly overlap PRV and the physiological glucose-sensing enzyme glucokinase. Then, experimentally lowering glucose sensing, specifically in the ARC, resulted in glucose intolerance due to deficient insulin secretion and no significant effect in the VMN, but in the LHA it resulted in a lowering of the glucose threshold that improved glucose tolerance and/or improved insulin sensitivity, with an exaggerated counter-regulatory response for glucagon secretion. No significant effect on insulin sensitivity or metabolic homeostasis was noted. Thus, these data reveal novel direct neuronal effects on pancreatic islets and also render a functional validation of the brain-to-islet neuronal map. They also demonstrate that distinct regions of the hypothalamus differentially control insulin and glucagon secretion, potentially in partnership to help maintain glucose homeostasis and guard against hypoglycemia. American Diabetes Association 2016-09 2016-04-12 /pmc/articles/PMC5001176/ /pubmed/27207534 http://dx.doi.org/10.2337/db15-0629 Text en © 2016 by the American Diabetes Association. http://diabetesjournals.org/site/licenseReaders 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. More information is available at http://diabetesjournals.org/site/license.
spellingShingle Islet Studies
Rosario, Wilfredo
Singh, Inderroop
Wautlet, Arnaud
Patterson, Christa
Flak, Jonathan
Becker, Thomas C.
Ali, Almas
Tamarina, Natalia
Philipson, Louis H.
Enquist, Lynn W.
Myers, Martin G.
Rhodes, Christopher J.
The Brain–to–Pancreatic Islet Neuronal Map Reveals Differential Glucose Regulation From Distinct Hypothalamic Regions
title The Brain–to–Pancreatic Islet Neuronal Map Reveals Differential Glucose Regulation From Distinct Hypothalamic Regions
title_full The Brain–to–Pancreatic Islet Neuronal Map Reveals Differential Glucose Regulation From Distinct Hypothalamic Regions
title_fullStr The Brain–to–Pancreatic Islet Neuronal Map Reveals Differential Glucose Regulation From Distinct Hypothalamic Regions
title_full_unstemmed The Brain–to–Pancreatic Islet Neuronal Map Reveals Differential Glucose Regulation From Distinct Hypothalamic Regions
title_short The Brain–to–Pancreatic Islet Neuronal Map Reveals Differential Glucose Regulation From Distinct Hypothalamic Regions
title_sort brain–to–pancreatic islet neuronal map reveals differential glucose regulation from distinct hypothalamic regions
topic Islet Studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5001176/
https://www.ncbi.nlm.nih.gov/pubmed/27207534
http://dx.doi.org/10.2337/db15-0629
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