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MiR‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles

MicroRNAs contribute to the maintenance of optimal cellular functions by fine‐tuning protein expression levels. In the pancreatic β‐cells, imbalances in the exocytotic machinery components lead to impaired insulin secretion and type 2 diabetes (T2D). We hypothesize that dysregulated miRNA expression...

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Autores principales: Salunkhe, Vishal A., Ofori, Jones K., Gandasi, Nikhil R., Salö, Sofia A., Hansson, Sofia, Andersson, Markus E., Wendt, Anna, Barg, Sebastian, Esguerra, Jonathan L. S., Eliasson, Lena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5688784/
https://www.ncbi.nlm.nih.gov/pubmed/29122960
http://dx.doi.org/10.14814/phy2.13493
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author Salunkhe, Vishal A.
Ofori, Jones K.
Gandasi, Nikhil R.
Salö, Sofia A.
Hansson, Sofia
Andersson, Markus E.
Wendt, Anna
Barg, Sebastian
Esguerra, Jonathan L. S.
Eliasson, Lena
author_facet Salunkhe, Vishal A.
Ofori, Jones K.
Gandasi, Nikhil R.
Salö, Sofia A.
Hansson, Sofia
Andersson, Markus E.
Wendt, Anna
Barg, Sebastian
Esguerra, Jonathan L. S.
Eliasson, Lena
author_sort Salunkhe, Vishal A.
collection PubMed
description MicroRNAs contribute to the maintenance of optimal cellular functions by fine‐tuning protein expression levels. In the pancreatic β‐cells, imbalances in the exocytotic machinery components lead to impaired insulin secretion and type 2 diabetes (T2D). We hypothesize that dysregulated miRNA expression exacerbates β‐cell dysfunction, and have earlier shown that islets from the diabetic GK‐rat model have increased expression of miRNAs, including miR‐335‐5p (miR‐335). Here, we aim to determine the specific role of miR‐335 during development of T2D, and the influence of this miRNA on glucose‐stimulated insulin secretion and Ca(2+)‐dependent exocytosis. We found that the expression of miR‐335 negatively correlated with secretion index in human islets of individuals with prediabetes. Overexpression of miR‐335 in human EndoC‐βH1 and in rat INS‐1 832/13 cells (OE335) resulted in decreased glucose‐stimulated insulin secretion, and OE335 cells showed concomitant reduction in three exocytotic proteins: SNAP25, Syntaxin‐binding protein 1 (STXBP1), and synaptotagmin 11 (SYT11). Single‐cell capacitance measurements, complemented with TIRF microscopy of the granule marker NPY‐mEGFP demonstrated a significant reduction in exocytosis in OE335 cells. The reduction was not associated with defective docking or decreased Ca(2+) current. More likely, it is a direct consequence of impaired priming of already docked granules. Earlier reports have proposed reduced granular priming as the cause of reduced first‐phase insulin secretion during prediabetes. Here, we show a specific role of miR‐335 in regulating insulin secretion during this transition period. Moreover, we can conclude that miR‐335 has the capacity to modulate insulin secretion and Ca(2+)‐dependent exocytosis through effects on granular priming.
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spelling pubmed-56887842017-11-24 MiR‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles Salunkhe, Vishal A. Ofori, Jones K. Gandasi, Nikhil R. Salö, Sofia A. Hansson, Sofia Andersson, Markus E. Wendt, Anna Barg, Sebastian Esguerra, Jonathan L. S. Eliasson, Lena Physiol Rep Original Research MicroRNAs contribute to the maintenance of optimal cellular functions by fine‐tuning protein expression levels. In the pancreatic β‐cells, imbalances in the exocytotic machinery components lead to impaired insulin secretion and type 2 diabetes (T2D). We hypothesize that dysregulated miRNA expression exacerbates β‐cell dysfunction, and have earlier shown that islets from the diabetic GK‐rat model have increased expression of miRNAs, including miR‐335‐5p (miR‐335). Here, we aim to determine the specific role of miR‐335 during development of T2D, and the influence of this miRNA on glucose‐stimulated insulin secretion and Ca(2+)‐dependent exocytosis. We found that the expression of miR‐335 negatively correlated with secretion index in human islets of individuals with prediabetes. Overexpression of miR‐335 in human EndoC‐βH1 and in rat INS‐1 832/13 cells (OE335) resulted in decreased glucose‐stimulated insulin secretion, and OE335 cells showed concomitant reduction in three exocytotic proteins: SNAP25, Syntaxin‐binding protein 1 (STXBP1), and synaptotagmin 11 (SYT11). Single‐cell capacitance measurements, complemented with TIRF microscopy of the granule marker NPY‐mEGFP demonstrated a significant reduction in exocytosis in OE335 cells. The reduction was not associated with defective docking or decreased Ca(2+) current. More likely, it is a direct consequence of impaired priming of already docked granules. Earlier reports have proposed reduced granular priming as the cause of reduced first‐phase insulin secretion during prediabetes. Here, we show a specific role of miR‐335 in regulating insulin secretion during this transition period. Moreover, we can conclude that miR‐335 has the capacity to modulate insulin secretion and Ca(2+)‐dependent exocytosis through effects on granular priming. John Wiley and Sons Inc. 2017-11-09 /pmc/articles/PMC5688784/ /pubmed/29122960 http://dx.doi.org/10.14814/phy2.13493 Text en © 2017 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of The Physiological Society and the American Physiological Society This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Salunkhe, Vishal A.
Ofori, Jones K.
Gandasi, Nikhil R.
Salö, Sofia A.
Hansson, Sofia
Andersson, Markus E.
Wendt, Anna
Barg, Sebastian
Esguerra, Jonathan L. S.
Eliasson, Lena
MiR‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles
title MiR‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles
title_full MiR‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles
title_fullStr MiR‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles
title_full_unstemmed MiR‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles
title_short MiR‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles
title_sort mir‐335 overexpression impairs insulin secretion through defective priming of insulin vesicles
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5688784/
https://www.ncbi.nlm.nih.gov/pubmed/29122960
http://dx.doi.org/10.14814/phy2.13493
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