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Activation of FoxM1 Revitalizes the Replicative Potential of Aged β-Cells in Male Mice and Enhances Insulin Secretion

Type 2 diabetes incidence increases with age, while β-cell replication declines. The transcription factor FoxM1 is required for β-cell replication in various situations, and its expression declines with age. We hypothesized that increased FoxM1 activity in aged β-cells would rejuvenate proliferation...

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Autores principales: Golson, Maria L., Dunn, Jennifer C., Maulis, Matthew F., Dadi, Prasanna K., Osipovich, Anna B., Magnuson, Mark A., Jacobson, David A., Gannon, Maureen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4613976/
https://www.ncbi.nlm.nih.gov/pubmed/26251404
http://dx.doi.org/10.2337/db15-0465
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author Golson, Maria L.
Dunn, Jennifer C.
Maulis, Matthew F.
Dadi, Prasanna K.
Osipovich, Anna B.
Magnuson, Mark A.
Jacobson, David A.
Gannon, Maureen
author_facet Golson, Maria L.
Dunn, Jennifer C.
Maulis, Matthew F.
Dadi, Prasanna K.
Osipovich, Anna B.
Magnuson, Mark A.
Jacobson, David A.
Gannon, Maureen
author_sort Golson, Maria L.
collection PubMed
description Type 2 diabetes incidence increases with age, while β-cell replication declines. The transcription factor FoxM1 is required for β-cell replication in various situations, and its expression declines with age. We hypothesized that increased FoxM1 activity in aged β-cells would rejuvenate proliferation. Induction of an activated form of FoxM1 was sufficient to increase β-cell mass and proliferation in 12-month-old male mice after just 2 weeks. Unexpectedly, at 2 months of age, induction of activated FoxM1 in male mice improved glucose homeostasis with unchanged β-cell mass. Cells expressing activated FoxM1 demonstrated enhanced glucose-stimulated Ca(2+) influx, which resulted in improved glucose tolerance through enhanced β-cell function. Conversely, our laboratory has previously demonstrated that mice lacking FoxM1 in the pancreas display glucose intolerance or diabetes with only a 60% reduction in β-cell mass, suggesting that the loss of FoxM1 is detrimental to β-cell function. Ex vivo insulin secretion was therefore examined in size-matched islets from young mice lacking FoxM1 in β-cells. Foxm1-deficient islets indeed displayed reduced insulin secretion. Our studies reveal that activated FoxM1 increases β-cell replication while simultaneously enhancing insulin secretion and improving glucose homeostasis, making FoxM1 an attractive therapeutic target for diabetes.
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spelling pubmed-46139762016-11-01 Activation of FoxM1 Revitalizes the Replicative Potential of Aged β-Cells in Male Mice and Enhances Insulin Secretion Golson, Maria L. Dunn, Jennifer C. Maulis, Matthew F. Dadi, Prasanna K. Osipovich, Anna B. Magnuson, Mark A. Jacobson, David A. Gannon, Maureen Diabetes Islet Studies Type 2 diabetes incidence increases with age, while β-cell replication declines. The transcription factor FoxM1 is required for β-cell replication in various situations, and its expression declines with age. We hypothesized that increased FoxM1 activity in aged β-cells would rejuvenate proliferation. Induction of an activated form of FoxM1 was sufficient to increase β-cell mass and proliferation in 12-month-old male mice after just 2 weeks. Unexpectedly, at 2 months of age, induction of activated FoxM1 in male mice improved glucose homeostasis with unchanged β-cell mass. Cells expressing activated FoxM1 demonstrated enhanced glucose-stimulated Ca(2+) influx, which resulted in improved glucose tolerance through enhanced β-cell function. Conversely, our laboratory has previously demonstrated that mice lacking FoxM1 in the pancreas display glucose intolerance or diabetes with only a 60% reduction in β-cell mass, suggesting that the loss of FoxM1 is detrimental to β-cell function. Ex vivo insulin secretion was therefore examined in size-matched islets from young mice lacking FoxM1 in β-cells. Foxm1-deficient islets indeed displayed reduced insulin secretion. Our studies reveal that activated FoxM1 increases β-cell replication while simultaneously enhancing insulin secretion and improving glucose homeostasis, making FoxM1 an attractive therapeutic target for diabetes. American Diabetes Association 2015-11 2015-08-06 /pmc/articles/PMC4613976/ /pubmed/26251404 http://dx.doi.org/10.2337/db15-0465 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
Golson, Maria L.
Dunn, Jennifer C.
Maulis, Matthew F.
Dadi, Prasanna K.
Osipovich, Anna B.
Magnuson, Mark A.
Jacobson, David A.
Gannon, Maureen
Activation of FoxM1 Revitalizes the Replicative Potential of Aged β-Cells in Male Mice and Enhances Insulin Secretion
title Activation of FoxM1 Revitalizes the Replicative Potential of Aged β-Cells in Male Mice and Enhances Insulin Secretion
title_full Activation of FoxM1 Revitalizes the Replicative Potential of Aged β-Cells in Male Mice and Enhances Insulin Secretion
title_fullStr Activation of FoxM1 Revitalizes the Replicative Potential of Aged β-Cells in Male Mice and Enhances Insulin Secretion
title_full_unstemmed Activation of FoxM1 Revitalizes the Replicative Potential of Aged β-Cells in Male Mice and Enhances Insulin Secretion
title_short Activation of FoxM1 Revitalizes the Replicative Potential of Aged β-Cells in Male Mice and Enhances Insulin Secretion
title_sort activation of foxm1 revitalizes the replicative potential of aged β-cells in male mice and enhances insulin secretion
topic Islet Studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4613976/
https://www.ncbi.nlm.nih.gov/pubmed/26251404
http://dx.doi.org/10.2337/db15-0465
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