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EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells

The loss of inhibition of glucagon secretion exacerbates hyperglycemia in type 1 and 2 diabetes. However, the molecular mechanisms that regulate glucagon secretion in unaffected and diabetic states remain relatively unexplained. We present evidence supporting a new model of juxtacrine-mediated regul...

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Autores principales: Hutchens, Troy, Piston, David W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4613968/
https://www.ncbi.nlm.nih.gov/pubmed/26251403
http://dx.doi.org/10.2337/db15-0488
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author Hutchens, Troy
Piston, David W.
author_facet Hutchens, Troy
Piston, David W.
author_sort Hutchens, Troy
collection PubMed
description The loss of inhibition of glucagon secretion exacerbates hyperglycemia in type 1 and 2 diabetes. However, the molecular mechanisms that regulate glucagon secretion in unaffected and diabetic states remain relatively unexplained. We present evidence supporting a new model of juxtacrine-mediated regulation of glucagon secretion where neighboring islet cells negatively regulate glucagon secretion through tonic stimulation of α-cell EphA receptors. Primarily through EphA4 receptors, this stimulation correlates with maintenance of a dense F-actin network. In islets, additional stimulation and inhibition of endogenous EphA forward signaling result in inhibition and enhancement, respectively, of glucagon secretion, accompanied by an increase and decrease, respectively, in α-cell F-actin density. Sorted α-cells lack endogenous stimulation of EphA forward signaling from neighboring cells, resulting in enhanced basal glucagon secretion as compared with islets and the elimination of glucose inhibition of glucagon secretion. Restoration of EphA forward signaling in sorted α-cells recapitulates both normal basal glucagon secretion and glucose inhibition of glucagon secretion. Additionally, α-cell–specific EphA4(−/−) mice exhibit abnormal glucagon dynamics, and EphA4(−/−) α-cells contain less dense F-actin networks than EphA4(+/+) α-cells. This juxtacrine-mediated model provides insight into the functional and dysfunctional regulation of glucagon secretion and opens up new therapeutic strategies for the clinical management of diabetes.
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spelling pubmed-46139682016-11-01 EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells Hutchens, Troy Piston, David W. Diabetes Islet Studies The loss of inhibition of glucagon secretion exacerbates hyperglycemia in type 1 and 2 diabetes. However, the molecular mechanisms that regulate glucagon secretion in unaffected and diabetic states remain relatively unexplained. We present evidence supporting a new model of juxtacrine-mediated regulation of glucagon secretion where neighboring islet cells negatively regulate glucagon secretion through tonic stimulation of α-cell EphA receptors. Primarily through EphA4 receptors, this stimulation correlates with maintenance of a dense F-actin network. In islets, additional stimulation and inhibition of endogenous EphA forward signaling result in inhibition and enhancement, respectively, of glucagon secretion, accompanied by an increase and decrease, respectively, in α-cell F-actin density. Sorted α-cells lack endogenous stimulation of EphA forward signaling from neighboring cells, resulting in enhanced basal glucagon secretion as compared with islets and the elimination of glucose inhibition of glucagon secretion. Restoration of EphA forward signaling in sorted α-cells recapitulates both normal basal glucagon secretion and glucose inhibition of glucagon secretion. Additionally, α-cell–specific EphA4(−/−) mice exhibit abnormal glucagon dynamics, and EphA4(−/−) α-cells contain less dense F-actin networks than EphA4(+/+) α-cells. This juxtacrine-mediated model provides insight into the functional and dysfunctional regulation of glucagon secretion and opens up new therapeutic strategies for the clinical management of diabetes. American Diabetes Association 2015-11 2015-08-06 /pmc/articles/PMC4613968/ /pubmed/26251403 http://dx.doi.org/10.2337/db15-0488 Text en © 2015 by the 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.
spellingShingle Islet Studies
Hutchens, Troy
Piston, David W.
EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells
title EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells
title_full EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells
title_fullStr EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells
title_full_unstemmed EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells
title_short EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells
title_sort epha4 receptor forward signaling inhibits glucagon secretion from α-cells
topic Islet Studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4613968/
https://www.ncbi.nlm.nih.gov/pubmed/26251403
http://dx.doi.org/10.2337/db15-0488
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