Cargando…

MITF protects against oxidative damage-induced retinal degeneration by regulating the NRF2 pathway in the retinal pigment epithelium

Oxidative damage is one of the major contributors to retinal degenerative diseases such as age-related macular degeneration (AMD), while RPE mediated antioxidant defense plays an important role in preventing retinopathies. However, the regulatory mechanisms of antioxidant signaling in RPE cells are...

Descripción completa

Detalles Bibliográficos
Autores principales: Han, Shuxian, Chen, Jianjun, Hua, Jiajia, Hu, Xiaojuan, Jian, Shuhui, Zheng, Guoxiao, Wang, Jing, Li, Huirong, Yang, Jinglei, Hejtmancik, J. Fielding, Qu, Jia, Ma, Xiaoyin, Hou, Ling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7191850/
https://www.ncbi.nlm.nih.gov/pubmed/32361183
http://dx.doi.org/10.1016/j.redox.2020.101537
_version_ 1783527927671947264
author Han, Shuxian
Chen, Jianjun
Hua, Jiajia
Hu, Xiaojuan
Jian, Shuhui
Zheng, Guoxiao
Wang, Jing
Li, Huirong
Yang, Jinglei
Hejtmancik, J. Fielding
Qu, Jia
Ma, Xiaoyin
Hou, Ling
author_facet Han, Shuxian
Chen, Jianjun
Hua, Jiajia
Hu, Xiaojuan
Jian, Shuhui
Zheng, Guoxiao
Wang, Jing
Li, Huirong
Yang, Jinglei
Hejtmancik, J. Fielding
Qu, Jia
Ma, Xiaoyin
Hou, Ling
author_sort Han, Shuxian
collection PubMed
description Oxidative damage is one of the major contributors to retinal degenerative diseases such as age-related macular degeneration (AMD), while RPE mediated antioxidant defense plays an important role in preventing retinopathies. However, the regulatory mechanisms of antioxidant signaling in RPE cells are poorly understood. Here we show that transcription factor MITF regulates the antioxidant response in RPE cells, protecting the neural retina from oxidative damage. In the oxidative stress-induced retinal degeneration mouse model, retinal degeneration in Mitf+/- mice is significantly aggravated compared to WT mice. In contrast, overexpression of Mitf in Dct-Mitf transgenic mice and AAV mediated overexpression in RPE cells protect the neural retina against oxidative damage. Mechanistically, MITF both directly regulates the transcription of NRF2, a master regulator of antioxidant signaling, and promotes its nuclear translocation. Furthermore, specific overexpression of NRF2 in Mitf+/- RPE cells activates antioxidant signaling and partially protects the retina from oxidative damage. Taken together, our findings demonstrate the regulation of NRF2 by MITF in RPE cells and provide new insights into potential therapeutic approaches for prevention of oxidative damage diseases.
format Online
Article
Text
id pubmed-7191850
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-71918502020-05-05 MITF protects against oxidative damage-induced retinal degeneration by regulating the NRF2 pathway in the retinal pigment epithelium Han, Shuxian Chen, Jianjun Hua, Jiajia Hu, Xiaojuan Jian, Shuhui Zheng, Guoxiao Wang, Jing Li, Huirong Yang, Jinglei Hejtmancik, J. Fielding Qu, Jia Ma, Xiaoyin Hou, Ling Redox Biol Research Paper Oxidative damage is one of the major contributors to retinal degenerative diseases such as age-related macular degeneration (AMD), while RPE mediated antioxidant defense plays an important role in preventing retinopathies. However, the regulatory mechanisms of antioxidant signaling in RPE cells are poorly understood. Here we show that transcription factor MITF regulates the antioxidant response in RPE cells, protecting the neural retina from oxidative damage. In the oxidative stress-induced retinal degeneration mouse model, retinal degeneration in Mitf+/- mice is significantly aggravated compared to WT mice. In contrast, overexpression of Mitf in Dct-Mitf transgenic mice and AAV mediated overexpression in RPE cells protect the neural retina against oxidative damage. Mechanistically, MITF both directly regulates the transcription of NRF2, a master regulator of antioxidant signaling, and promotes its nuclear translocation. Furthermore, specific overexpression of NRF2 in Mitf+/- RPE cells activates antioxidant signaling and partially protects the retina from oxidative damage. Taken together, our findings demonstrate the regulation of NRF2 by MITF in RPE cells and provide new insights into potential therapeutic approaches for prevention of oxidative damage diseases. Elsevier 2020-04-16 /pmc/articles/PMC7191850/ /pubmed/32361183 http://dx.doi.org/10.1016/j.redox.2020.101537 Text en © 2020 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Han, Shuxian
Chen, Jianjun
Hua, Jiajia
Hu, Xiaojuan
Jian, Shuhui
Zheng, Guoxiao
Wang, Jing
Li, Huirong
Yang, Jinglei
Hejtmancik, J. Fielding
Qu, Jia
Ma, Xiaoyin
Hou, Ling
MITF protects against oxidative damage-induced retinal degeneration by regulating the NRF2 pathway in the retinal pigment epithelium
title MITF protects against oxidative damage-induced retinal degeneration by regulating the NRF2 pathway in the retinal pigment epithelium
title_full MITF protects against oxidative damage-induced retinal degeneration by regulating the NRF2 pathway in the retinal pigment epithelium
title_fullStr MITF protects against oxidative damage-induced retinal degeneration by regulating the NRF2 pathway in the retinal pigment epithelium
title_full_unstemmed MITF protects against oxidative damage-induced retinal degeneration by regulating the NRF2 pathway in the retinal pigment epithelium
title_short MITF protects against oxidative damage-induced retinal degeneration by regulating the NRF2 pathway in the retinal pigment epithelium
title_sort mitf protects against oxidative damage-induced retinal degeneration by regulating the nrf2 pathway in the retinal pigment epithelium
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7191850/
https://www.ncbi.nlm.nih.gov/pubmed/32361183
http://dx.doi.org/10.1016/j.redox.2020.101537
work_keys_str_mv AT hanshuxian mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT chenjianjun mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT huajiajia mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT huxiaojuan mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT jianshuhui mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT zhengguoxiao mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT wangjing mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT lihuirong mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT yangjinglei mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT hejtmancikjfielding mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT qujia mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT maxiaoyin mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium
AT houling mitfprotectsagainstoxidativedamageinducedretinaldegenerationbyregulatingthenrf2pathwayintheretinalpigmentepithelium