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Inhibition of Miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via IRS-Akt-Foxo1 in diabetes

Mitochondrial function is essential to meet metabolic demand of pancreatic beta cells respond to high nutrient stress. Mitophagy is an essential component to normal pancreatic β-cell function and has been associated with β-cell failure in Type 2 diabetes (T2D). Our previous studies have indicated th...

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Autores principales: Chen, Lingling, Liu, Chunyan, Gao, Jianfeng, Xie, Zhiwen, Chan, Lawrence W.C., Keating, Damien J., Yang, Yibin, Sun, Jiazhong, Zhou, Fuling, Wei, Yongchang, Men, Xiuli, Yang, Sijun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5710878/
https://www.ncbi.nlm.nih.gov/pubmed/29207597
http://dx.doi.org/10.18632/oncotarget.20963
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author Chen, Lingling
Liu, Chunyan
Gao, Jianfeng
Xie, Zhiwen
Chan, Lawrence W.C.
Keating, Damien J.
Yang, Yibin
Sun, Jiazhong
Zhou, Fuling
Wei, Yongchang
Men, Xiuli
Yang, Sijun
author_facet Chen, Lingling
Liu, Chunyan
Gao, Jianfeng
Xie, Zhiwen
Chan, Lawrence W.C.
Keating, Damien J.
Yang, Yibin
Sun, Jiazhong
Zhou, Fuling
Wei, Yongchang
Men, Xiuli
Yang, Sijun
author_sort Chen, Lingling
collection PubMed
description Mitochondrial function is essential to meet metabolic demand of pancreatic beta cells respond to high nutrient stress. Mitophagy is an essential component to normal pancreatic β-cell function and has been associated with β-cell failure in Type 2 diabetes (T2D). Our previous studies have indicated that mitochondrial Rho (Miro) GTPase-mediated mitochondrial dysfunction under high nutrient stress leads to NOD-like receptor 3 (NLRP3)-dependent proinflammatory responses and subsequent insulin resistance. However, the in vivo mechanism by which Miro1 underlies mitophagy has not been identified. Here we show firstly that the expression of Miro is reduced in human T2D and mouse db/db islets and in INS-1 cell line exposed to high glucose and palmitate. β-cell specific ablation of Miro1 (Miro1f/f: Rip-cre mice, or (IKO) under high nutrient stress promotes the development of hyperglycemia. β-cells from IKO mice display an inhibition of mitophagy under oxidative stress and induces mitochondrial dysfunction. Dysfunctional mitophagy in IKO mice is represented by damaged islet beta cell mitochondrial and secretory capacity, unbalanced downstream MKK-JNK signalling without affecting the levels of MEK, ERK or p38 activation and subsequently, impaired insulin secretion signaling via inhibition IRS-AKT-Foxo1 pathway, leading to worsening glucose tolerance in these mice. Thus, these data suggest that Miro1 may be responsible for mitophagy deficiency and β-cell dysfunction in T2D and that strategies target Miro1 in vivo may provide a therapeutic target to enhance β-cell mitochondrial quality and insulin secretion to ameliorate complications associated with T2D.
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spelling pubmed-57108782017-12-04 Inhibition of Miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via IRS-Akt-Foxo1 in diabetes Chen, Lingling Liu, Chunyan Gao, Jianfeng Xie, Zhiwen Chan, Lawrence W.C. Keating, Damien J. Yang, Yibin Sun, Jiazhong Zhou, Fuling Wei, Yongchang Men, Xiuli Yang, Sijun Oncotarget Research Paper: Pathology Mitochondrial function is essential to meet metabolic demand of pancreatic beta cells respond to high nutrient stress. Mitophagy is an essential component to normal pancreatic β-cell function and has been associated with β-cell failure in Type 2 diabetes (T2D). Our previous studies have indicated that mitochondrial Rho (Miro) GTPase-mediated mitochondrial dysfunction under high nutrient stress leads to NOD-like receptor 3 (NLRP3)-dependent proinflammatory responses and subsequent insulin resistance. However, the in vivo mechanism by which Miro1 underlies mitophagy has not been identified. Here we show firstly that the expression of Miro is reduced in human T2D and mouse db/db islets and in INS-1 cell line exposed to high glucose and palmitate. β-cell specific ablation of Miro1 (Miro1f/f: Rip-cre mice, or (IKO) under high nutrient stress promotes the development of hyperglycemia. β-cells from IKO mice display an inhibition of mitophagy under oxidative stress and induces mitochondrial dysfunction. Dysfunctional mitophagy in IKO mice is represented by damaged islet beta cell mitochondrial and secretory capacity, unbalanced downstream MKK-JNK signalling without affecting the levels of MEK, ERK or p38 activation and subsequently, impaired insulin secretion signaling via inhibition IRS-AKT-Foxo1 pathway, leading to worsening glucose tolerance in these mice. Thus, these data suggest that Miro1 may be responsible for mitophagy deficiency and β-cell dysfunction in T2D and that strategies target Miro1 in vivo may provide a therapeutic target to enhance β-cell mitochondrial quality and insulin secretion to ameliorate complications associated with T2D. Impact Journals LLC 2017-09-16 /pmc/articles/PMC5710878/ /pubmed/29207597 http://dx.doi.org/10.18632/oncotarget.20963 Text en Copyright: © 2017 Chen et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/) 3.0 (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper: Pathology
Chen, Lingling
Liu, Chunyan
Gao, Jianfeng
Xie, Zhiwen
Chan, Lawrence W.C.
Keating, Damien J.
Yang, Yibin
Sun, Jiazhong
Zhou, Fuling
Wei, Yongchang
Men, Xiuli
Yang, Sijun
Inhibition of Miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via IRS-Akt-Foxo1 in diabetes
title Inhibition of Miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via IRS-Akt-Foxo1 in diabetes
title_full Inhibition of Miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via IRS-Akt-Foxo1 in diabetes
title_fullStr Inhibition of Miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via IRS-Akt-Foxo1 in diabetes
title_full_unstemmed Inhibition of Miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via IRS-Akt-Foxo1 in diabetes
title_short Inhibition of Miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via IRS-Akt-Foxo1 in diabetes
title_sort inhibition of miro1 disturbs mitophagy and pancreatic β-cell function interfering insulin release via irs-akt-foxo1 in diabetes
topic Research Paper: Pathology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5710878/
https://www.ncbi.nlm.nih.gov/pubmed/29207597
http://dx.doi.org/10.18632/oncotarget.20963
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