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Enzymatically inactive OGG1 binds to DNA and steers base excision repair toward gene transcription

8‐Oxoguanine DNA glycosylase1 (OGG1)‐initiated base excision repair (BER) is the primary pathway to remove the pre‐mutagenic 8‐oxo‐7,8‐dihydroguanine (8‐oxoG) from DNA. Recent studies documented 8‐oxoG serves as an epigenetic‐like mark and OGG1 modulates gene expression in oxidatively stressed cells...

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Autores principales: Hao, Wenjing, Wang, Jing, Zhang, Yuanhang, Wang, Chenxin, Xia, Lan, Zhang, Wenhe, Zafar, Muhammad, Kang, Ju‐Yong, Wang, Ruoxi, Ali Bohio, Ameer, Pan, Lang, Zeng, Xianlu, Wei, Min, Boldogh, Istvan, Ba, Xueqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7318607/
https://www.ncbi.nlm.nih.gov/pubmed/32378256
http://dx.doi.org/10.1096/fj.201902243R
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author Hao, Wenjing
Wang, Jing
Zhang, Yuanhang
Wang, Chenxin
Xia, Lan
Zhang, Wenhe
Zafar, Muhammad
Kang, Ju‐Yong
Wang, Ruoxi
Ali Bohio, Ameer
Pan, Lang
Zeng, Xianlu
Wei, Min
Boldogh, Istvan
Ba, Xueqing
author_facet Hao, Wenjing
Wang, Jing
Zhang, Yuanhang
Wang, Chenxin
Xia, Lan
Zhang, Wenhe
Zafar, Muhammad
Kang, Ju‐Yong
Wang, Ruoxi
Ali Bohio, Ameer
Pan, Lang
Zeng, Xianlu
Wei, Min
Boldogh, Istvan
Ba, Xueqing
author_sort Hao, Wenjing
collection PubMed
description 8‐Oxoguanine DNA glycosylase1 (OGG1)‐initiated base excision repair (BER) is the primary pathway to remove the pre‐mutagenic 8‐oxo‐7,8‐dihydroguanine (8‐oxoG) from DNA. Recent studies documented 8‐oxoG serves as an epigenetic‐like mark and OGG1 modulates gene expression in oxidatively stressed cells. For this new role of OGG1, two distinct mechanisms have been proposed: one is coupled to base excision, while the other only requires substrate binding of OGG1––both resulting in conformational adjustment in the adjacent DNA sequences providing access for transcription factors to their cis‐elements. The present study aimed to examine if BER activity of OGG1 is required for pro‐inflammatory gene expression. To this end, Ogg1/OGG1 knockout/depleted cells were transfected with constructs expressing wild‐type (wt) and repair‐deficient mutants of OGG1. OGG1's promoter enrichment, oxidative state, and gene expression were examined. Results showed that TNFα exposure increased levels of oxidatively modified cysteine(s) of wt OGG1 without impairing its association with promoter and facilitated gene expression. The excision deficient K249Q mutant was even a more potent activator of gene expression; whereas, mutant OGG1 with impaired substrate recognition/binding was not. These data suggested the interaction of OGG1 with its substrate at regulatory regions followed by conformational adjustment in the adjacent DNA is the primary mode to modulate inflammatory gene expression.
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spelling pubmed-73186072020-06-29 Enzymatically inactive OGG1 binds to DNA and steers base excision repair toward gene transcription Hao, Wenjing Wang, Jing Zhang, Yuanhang Wang, Chenxin Xia, Lan Zhang, Wenhe Zafar, Muhammad Kang, Ju‐Yong Wang, Ruoxi Ali Bohio, Ameer Pan, Lang Zeng, Xianlu Wei, Min Boldogh, Istvan Ba, Xueqing FASEB J Research Articles 8‐Oxoguanine DNA glycosylase1 (OGG1)‐initiated base excision repair (BER) is the primary pathway to remove the pre‐mutagenic 8‐oxo‐7,8‐dihydroguanine (8‐oxoG) from DNA. Recent studies documented 8‐oxoG serves as an epigenetic‐like mark and OGG1 modulates gene expression in oxidatively stressed cells. For this new role of OGG1, two distinct mechanisms have been proposed: one is coupled to base excision, while the other only requires substrate binding of OGG1––both resulting in conformational adjustment in the adjacent DNA sequences providing access for transcription factors to their cis‐elements. The present study aimed to examine if BER activity of OGG1 is required for pro‐inflammatory gene expression. To this end, Ogg1/OGG1 knockout/depleted cells were transfected with constructs expressing wild‐type (wt) and repair‐deficient mutants of OGG1. OGG1's promoter enrichment, oxidative state, and gene expression were examined. Results showed that TNFα exposure increased levels of oxidatively modified cysteine(s) of wt OGG1 without impairing its association with promoter and facilitated gene expression. The excision deficient K249Q mutant was even a more potent activator of gene expression; whereas, mutant OGG1 with impaired substrate recognition/binding was not. These data suggested the interaction of OGG1 with its substrate at regulatory regions followed by conformational adjustment in the adjacent DNA is the primary mode to modulate inflammatory gene expression. John Wiley and Sons Inc. 2020-05-06 2020-06 /pmc/articles/PMC7318607/ /pubmed/32378256 http://dx.doi.org/10.1096/fj.201902243R Text en © 2020 The Authors. The FASEB Journal published by Wiley Periodicals LLC on behalf of Federation of American Societies for Experimental Biology This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles
Hao, Wenjing
Wang, Jing
Zhang, Yuanhang
Wang, Chenxin
Xia, Lan
Zhang, Wenhe
Zafar, Muhammad
Kang, Ju‐Yong
Wang, Ruoxi
Ali Bohio, Ameer
Pan, Lang
Zeng, Xianlu
Wei, Min
Boldogh, Istvan
Ba, Xueqing
Enzymatically inactive OGG1 binds to DNA and steers base excision repair toward gene transcription
title Enzymatically inactive OGG1 binds to DNA and steers base excision repair toward gene transcription
title_full Enzymatically inactive OGG1 binds to DNA and steers base excision repair toward gene transcription
title_fullStr Enzymatically inactive OGG1 binds to DNA and steers base excision repair toward gene transcription
title_full_unstemmed Enzymatically inactive OGG1 binds to DNA and steers base excision repair toward gene transcription
title_short Enzymatically inactive OGG1 binds to DNA and steers base excision repair toward gene transcription
title_sort enzymatically inactive ogg1 binds to dna and steers base excision repair toward gene transcription
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7318607/
https://www.ncbi.nlm.nih.gov/pubmed/32378256
http://dx.doi.org/10.1096/fj.201902243R
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