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Epigenetic repression of miR-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting Keap1-Nrf2/miR-200a axis in skeletal muscle

Rationale: Skeletal muscle insulin resistance is detectable before type 2 diabetes is diagnosed. Exposure to di(2-ethylhexyl) phthalate (DEHP), a typical environmental endocrine-disrupting chemical, is a novel risk factor for insulin resistance and type 2 diabetes. This study aimed to explore insuli...

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Autores principales: Wei, Jie, Hao, Qiongyu, Chen, Chengkun, Li, Juan, Han, Xikui, Lei, Zhao, Wang, Tao, Wang, Yinan, You, Xiang, Chen, Xiaoxuan, Li, Huasheng, Ding, Yuxin, Huang, Weihao, Hu, Yangyang, Lin, Shuirong, Shen, Heqing, Lin, Yi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7415800/
https://www.ncbi.nlm.nih.gov/pubmed/32802189
http://dx.doi.org/10.7150/thno.45253
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author Wei, Jie
Hao, Qiongyu
Chen, Chengkun
Li, Juan
Han, Xikui
Lei, Zhao
Wang, Tao
Wang, Yinan
You, Xiang
Chen, Xiaoxuan
Li, Huasheng
Ding, Yuxin
Huang, Weihao
Hu, Yangyang
Lin, Shuirong
Shen, Heqing
Lin, Yi
author_facet Wei, Jie
Hao, Qiongyu
Chen, Chengkun
Li, Juan
Han, Xikui
Lei, Zhao
Wang, Tao
Wang, Yinan
You, Xiang
Chen, Xiaoxuan
Li, Huasheng
Ding, Yuxin
Huang, Weihao
Hu, Yangyang
Lin, Shuirong
Shen, Heqing
Lin, Yi
author_sort Wei, Jie
collection PubMed
description Rationale: Skeletal muscle insulin resistance is detectable before type 2 diabetes is diagnosed. Exposure to di(2-ethylhexyl) phthalate (DEHP), a typical environmental endocrine-disrupting chemical, is a novel risk factor for insulin resistance and type 2 diabetes. This study aimed to explore insulin signaling regulatory pathway in skeletal muscle of the DEHP-induced insulin-resistant mice and to investigate potential therapeutic strategies for treating insulin resistance. Methods: C57BL/6J male mice were exposed to 2 mg/kg/day DEHP for 15 weeks. Whole-body glucose homeostasis, oxidative stress and deregulated miRNA-mediated molecular transduction in skeletal muscle were examined. microRNA (miRNA) interventions based on lentiviruses and adeno-associated viruses 9 (AAV9) were performed. Results: Dnmt3a-dependent promoter methylation and lncRNA Malat1-related sponge functions cooperatively downregulated miR-17 in DEHP-exposed skeletal muscle cells. DEHP suppressed miR-17 to disrupt the Keap1-Nrf2 redox system and to activate oxidative stress-responsive Txnip in skeletal muscle. Oxidative stress upregulated miR-200a, which directly targets the 3'UTR of Insr and Irs1, leading to hindered insulin signaling and impaired insulin-dependent glucose uptake in skeletal muscle, ultimately promoting the development of insulin resistance. AAV9-induced overexpression of miR-17 and lentivirus-mediated silencing of miR-200a in skeletal muscle ameliorated whole-body insulin resistance in DEHP-exposed mice. Conclusions: The miR-17/Keap1-Nrf2/miR-200a axis contributed to DEHP-induced insulin resistance. miR-17 is a positive regulator, whereas miR-200a is a negative regulator of insulin signaling in skeletal muscle, and both miRNAs have the potential to become therapeutic targets for preventing and treating insulin resistance or type 2 diabetes.
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spelling pubmed-74158002020-08-13 Epigenetic repression of miR-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting Keap1-Nrf2/miR-200a axis in skeletal muscle Wei, Jie Hao, Qiongyu Chen, Chengkun Li, Juan Han, Xikui Lei, Zhao Wang, Tao Wang, Yinan You, Xiang Chen, Xiaoxuan Li, Huasheng Ding, Yuxin Huang, Weihao Hu, Yangyang Lin, Shuirong Shen, Heqing Lin, Yi Theranostics Research Paper Rationale: Skeletal muscle insulin resistance is detectable before type 2 diabetes is diagnosed. Exposure to di(2-ethylhexyl) phthalate (DEHP), a typical environmental endocrine-disrupting chemical, is a novel risk factor for insulin resistance and type 2 diabetes. This study aimed to explore insulin signaling regulatory pathway in skeletal muscle of the DEHP-induced insulin-resistant mice and to investigate potential therapeutic strategies for treating insulin resistance. Methods: C57BL/6J male mice were exposed to 2 mg/kg/day DEHP for 15 weeks. Whole-body glucose homeostasis, oxidative stress and deregulated miRNA-mediated molecular transduction in skeletal muscle were examined. microRNA (miRNA) interventions based on lentiviruses and adeno-associated viruses 9 (AAV9) were performed. Results: Dnmt3a-dependent promoter methylation and lncRNA Malat1-related sponge functions cooperatively downregulated miR-17 in DEHP-exposed skeletal muscle cells. DEHP suppressed miR-17 to disrupt the Keap1-Nrf2 redox system and to activate oxidative stress-responsive Txnip in skeletal muscle. Oxidative stress upregulated miR-200a, which directly targets the 3'UTR of Insr and Irs1, leading to hindered insulin signaling and impaired insulin-dependent glucose uptake in skeletal muscle, ultimately promoting the development of insulin resistance. AAV9-induced overexpression of miR-17 and lentivirus-mediated silencing of miR-200a in skeletal muscle ameliorated whole-body insulin resistance in DEHP-exposed mice. Conclusions: The miR-17/Keap1-Nrf2/miR-200a axis contributed to DEHP-induced insulin resistance. miR-17 is a positive regulator, whereas miR-200a is a negative regulator of insulin signaling in skeletal muscle, and both miRNAs have the potential to become therapeutic targets for preventing and treating insulin resistance or type 2 diabetes. Ivyspring International Publisher 2020-07-23 /pmc/articles/PMC7415800/ /pubmed/32802189 http://dx.doi.org/10.7150/thno.45253 Text en © The author(s) This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Wei, Jie
Hao, Qiongyu
Chen, Chengkun
Li, Juan
Han, Xikui
Lei, Zhao
Wang, Tao
Wang, Yinan
You, Xiang
Chen, Xiaoxuan
Li, Huasheng
Ding, Yuxin
Huang, Weihao
Hu, Yangyang
Lin, Shuirong
Shen, Heqing
Lin, Yi
Epigenetic repression of miR-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting Keap1-Nrf2/miR-200a axis in skeletal muscle
title Epigenetic repression of miR-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting Keap1-Nrf2/miR-200a axis in skeletal muscle
title_full Epigenetic repression of miR-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting Keap1-Nrf2/miR-200a axis in skeletal muscle
title_fullStr Epigenetic repression of miR-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting Keap1-Nrf2/miR-200a axis in skeletal muscle
title_full_unstemmed Epigenetic repression of miR-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting Keap1-Nrf2/miR-200a axis in skeletal muscle
title_short Epigenetic repression of miR-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting Keap1-Nrf2/miR-200a axis in skeletal muscle
title_sort epigenetic repression of mir-17 contributed to di(2-ethylhexyl) phthalate-triggered insulin resistance by targeting keap1-nrf2/mir-200a axis in skeletal muscle
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7415800/
https://www.ncbi.nlm.nih.gov/pubmed/32802189
http://dx.doi.org/10.7150/thno.45253
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