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Molecular Genetic Regulation of Slc30a8/ZnT8 Reveals a Positive Association With Glucose Tolerance

Zinc transporter 8 (ZnT8), encoded by SLC30A8, is chiefly expressed within pancreatic islet cells, where it mediates zinc (Zn(2+)) uptake into secretory granules. Although a common nonsynonymous polymorphism (R325W), which lowers activity, is associated with increased type 2 diabetes (T2D) risk, rar...

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Autores principales: Mitchell, Ryan K., Hu, Ming, Chabosseau, Pauline L., Cane, Matthew C., Meur, Gargi, Bellomo, Elisa A., Carzaniga, Raffaella, Collinson, Lucy M., Li, Wen-Hong, Hodson, David J., Rutter, Guy A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Endocrine Society 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4995240/
https://www.ncbi.nlm.nih.gov/pubmed/26584158
http://dx.doi.org/10.1210/me.2015-1227
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author Mitchell, Ryan K.
Hu, Ming
Chabosseau, Pauline L.
Cane, Matthew C.
Meur, Gargi
Bellomo, Elisa A.
Carzaniga, Raffaella
Collinson, Lucy M.
Li, Wen-Hong
Hodson, David J.
Rutter, Guy A.
author_facet Mitchell, Ryan K.
Hu, Ming
Chabosseau, Pauline L.
Cane, Matthew C.
Meur, Gargi
Bellomo, Elisa A.
Carzaniga, Raffaella
Collinson, Lucy M.
Li, Wen-Hong
Hodson, David J.
Rutter, Guy A.
author_sort Mitchell, Ryan K.
collection PubMed
description Zinc transporter 8 (ZnT8), encoded by SLC30A8, is chiefly expressed within pancreatic islet cells, where it mediates zinc (Zn(2+)) uptake into secretory granules. Although a common nonsynonymous polymorphism (R325W), which lowers activity, is associated with increased type 2 diabetes (T2D) risk, rare inactivating mutations in SLC30A8 have been reported to protect against T2D. Here, we generate and characterize new mouse models to explore the impact on glucose homeostasis of graded changes in ZnT8 activity in the β-cell. Firstly, Slc30a8 was deleted highly selectively in these cells using the novel deleter strain, Ins1Cre. The resultant Ins1CreZnT8KO mice displayed significant (P < .05) impairments in glucose tolerance at 10 weeks of age vs littermate controls, and glucose-induced increases in circulating insulin were inhibited in vivo. Although insulin release from Ins1CreZnT8KO islets was normal, Zn(2+) release was severely impaired. Conversely, transgenic ZnT8Tg mice, overexpressing the transporter inducibly in the adult β-cell using an insulin promoter-dependent Tet-On system, showed significant (P < .01) improvements in glucose tolerance compared with control animals. Glucose-induced insulin secretion from ZnT8Tg islets was severely impaired, whereas Zn(2+) release was significantly enhanced. Our findings demonstrate that glucose homeostasis in the mouse improves as β-cell ZnT8 activity increases, and remarkably, these changes track Zn(2+) rather than insulin release in vitro. Activation of ZnT8 in β-cells might therefore provide the basis of a novel approach to treating T2D.
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spelling pubmed-49952402016-09-01 Molecular Genetic Regulation of Slc30a8/ZnT8 Reveals a Positive Association With Glucose Tolerance Mitchell, Ryan K. Hu, Ming Chabosseau, Pauline L. Cane, Matthew C. Meur, Gargi Bellomo, Elisa A. Carzaniga, Raffaella Collinson, Lucy M. Li, Wen-Hong Hodson, David J. Rutter, Guy A. Mol Endocrinol Original Research Zinc transporter 8 (ZnT8), encoded by SLC30A8, is chiefly expressed within pancreatic islet cells, where it mediates zinc (Zn(2+)) uptake into secretory granules. Although a common nonsynonymous polymorphism (R325W), which lowers activity, is associated with increased type 2 diabetes (T2D) risk, rare inactivating mutations in SLC30A8 have been reported to protect against T2D. Here, we generate and characterize new mouse models to explore the impact on glucose homeostasis of graded changes in ZnT8 activity in the β-cell. Firstly, Slc30a8 was deleted highly selectively in these cells using the novel deleter strain, Ins1Cre. The resultant Ins1CreZnT8KO mice displayed significant (P < .05) impairments in glucose tolerance at 10 weeks of age vs littermate controls, and glucose-induced increases in circulating insulin were inhibited in vivo. Although insulin release from Ins1CreZnT8KO islets was normal, Zn(2+) release was severely impaired. Conversely, transgenic ZnT8Tg mice, overexpressing the transporter inducibly in the adult β-cell using an insulin promoter-dependent Tet-On system, showed significant (P < .01) improvements in glucose tolerance compared with control animals. Glucose-induced insulin secretion from ZnT8Tg islets was severely impaired, whereas Zn(2+) release was significantly enhanced. Our findings demonstrate that glucose homeostasis in the mouse improves as β-cell ZnT8 activity increases, and remarkably, these changes track Zn(2+) rather than insulin release in vitro. Activation of ZnT8 in β-cells might therefore provide the basis of a novel approach to treating T2D. Endocrine Society 2016-01 2015-11-19 /pmc/articles/PMC4995240/ /pubmed/26584158 http://dx.doi.org/10.1210/me.2015-1227 Text en http://creativecommons.org/licenses/by/4.0/ This article has been published under the terms of the Creative Commons Attribution License (CC-BY; http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. Copyright for this article is retained by the author(s).
spellingShingle Original Research
Mitchell, Ryan K.
Hu, Ming
Chabosseau, Pauline L.
Cane, Matthew C.
Meur, Gargi
Bellomo, Elisa A.
Carzaniga, Raffaella
Collinson, Lucy M.
Li, Wen-Hong
Hodson, David J.
Rutter, Guy A.
Molecular Genetic Regulation of Slc30a8/ZnT8 Reveals a Positive Association With Glucose Tolerance
title Molecular Genetic Regulation of Slc30a8/ZnT8 Reveals a Positive Association With Glucose Tolerance
title_full Molecular Genetic Regulation of Slc30a8/ZnT8 Reveals a Positive Association With Glucose Tolerance
title_fullStr Molecular Genetic Regulation of Slc30a8/ZnT8 Reveals a Positive Association With Glucose Tolerance
title_full_unstemmed Molecular Genetic Regulation of Slc30a8/ZnT8 Reveals a Positive Association With Glucose Tolerance
title_short Molecular Genetic Regulation of Slc30a8/ZnT8 Reveals a Positive Association With Glucose Tolerance
title_sort molecular genetic regulation of slc30a8/znt8 reveals a positive association with glucose tolerance
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4995240/
https://www.ncbi.nlm.nih.gov/pubmed/26584158
http://dx.doi.org/10.1210/me.2015-1227
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