Cargando…

Quercetin and Isorhamnetin Reduce Benzo[a]pyrene-Induced Genotoxicity by Inducing RAD51 Expression through Downregulation of miR−34a

Benzo[a]pyrene (B[a]P) is metabolized in the liver into highly reactive mutagenic and genotoxic metabolites, which induce carcinogenesis. The mutagenic factors, including B[a]P-7,8-dihydrodiol-9,10-epoxide (BPDE) and reactive oxygen species, generated during B[a]P metabolism can cause DNA damage, su...

Descripción completa

Detalles Bibliográficos
Autores principales: Kim, Min, Jee, Seung-Cheol, Shin, Min-Kyoung, Han, Dong-Hee, Bu, Kyung-Bin, Lee, Seung-Cheol, Jang, Bo-Young, Sung, Jung-Suk
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9653982/
https://www.ncbi.nlm.nih.gov/pubmed/36361910
http://dx.doi.org/10.3390/ijms232113125
_version_ 1784828816181428224
author Kim, Min
Jee, Seung-Cheol
Shin, Min-Kyoung
Han, Dong-Hee
Bu, Kyung-Bin
Lee, Seung-Cheol
Jang, Bo-Young
Sung, Jung-Suk
author_facet Kim, Min
Jee, Seung-Cheol
Shin, Min-Kyoung
Han, Dong-Hee
Bu, Kyung-Bin
Lee, Seung-Cheol
Jang, Bo-Young
Sung, Jung-Suk
author_sort Kim, Min
collection PubMed
description Benzo[a]pyrene (B[a]P) is metabolized in the liver into highly reactive mutagenic and genotoxic metabolites, which induce carcinogenesis. The mutagenic factors, including B[a]P-7,8-dihydrodiol-9,10-epoxide (BPDE) and reactive oxygen species, generated during B[a]P metabolism can cause DNA damage, such as BPDE-DNA adducts, 8-oxo-dG, and double-strand breaks (DSBs). In this study, we mechanistically investigated the effects of quercetin and its major metabolite isorhamnetin on the repair of B[a]P-induced DNA DSBs. Whole−transcriptome analysis showed that quercetin and isorhamnetin each modulate the expression levels of genes involved in DNA repair, especially those in homologous recombination. RAD51 was identified as a key gene whose expression level was decreased in B[a]P−treated cells and increased by quercetin or isorhamnetin treatment. Furthermore, the number of γH(2)AX foci induced by B[a]P was significantly decreased by quercetin or isorhamnetin, whereas RAD51 mRNA and protein levels were increased. Additionally, among the five microRNAs (miRs) known to downregulate RAD51, miR−34a level was significantly downregulated by quercetin or isorhamnetin. The protective effect of quercetin or isorhamnetin was lower in cells transfected with a miR−34a mimic than in non−transfected cells, and the B[a]P-induced DNA DSBs remained unrepaired. Our results show that quercetin and isorhamnetin each upregulates RAD51 by downregulating miR−34a and thereby suppresses B[a]P-induced DNA damage.
format Online
Article
Text
id pubmed-9653982
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96539822022-11-15 Quercetin and Isorhamnetin Reduce Benzo[a]pyrene-Induced Genotoxicity by Inducing RAD51 Expression through Downregulation of miR−34a Kim, Min Jee, Seung-Cheol Shin, Min-Kyoung Han, Dong-Hee Bu, Kyung-Bin Lee, Seung-Cheol Jang, Bo-Young Sung, Jung-Suk Int J Mol Sci Article Benzo[a]pyrene (B[a]P) is metabolized in the liver into highly reactive mutagenic and genotoxic metabolites, which induce carcinogenesis. The mutagenic factors, including B[a]P-7,8-dihydrodiol-9,10-epoxide (BPDE) and reactive oxygen species, generated during B[a]P metabolism can cause DNA damage, such as BPDE-DNA adducts, 8-oxo-dG, and double-strand breaks (DSBs). In this study, we mechanistically investigated the effects of quercetin and its major metabolite isorhamnetin on the repair of B[a]P-induced DNA DSBs. Whole−transcriptome analysis showed that quercetin and isorhamnetin each modulate the expression levels of genes involved in DNA repair, especially those in homologous recombination. RAD51 was identified as a key gene whose expression level was decreased in B[a]P−treated cells and increased by quercetin or isorhamnetin treatment. Furthermore, the number of γH(2)AX foci induced by B[a]P was significantly decreased by quercetin or isorhamnetin, whereas RAD51 mRNA and protein levels were increased. Additionally, among the five microRNAs (miRs) known to downregulate RAD51, miR−34a level was significantly downregulated by quercetin or isorhamnetin. The protective effect of quercetin or isorhamnetin was lower in cells transfected with a miR−34a mimic than in non−transfected cells, and the B[a]P-induced DNA DSBs remained unrepaired. Our results show that quercetin and isorhamnetin each upregulates RAD51 by downregulating miR−34a and thereby suppresses B[a]P-induced DNA damage. MDPI 2022-10-28 /pmc/articles/PMC9653982/ /pubmed/36361910 http://dx.doi.org/10.3390/ijms232113125 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kim, Min
Jee, Seung-Cheol
Shin, Min-Kyoung
Han, Dong-Hee
Bu, Kyung-Bin
Lee, Seung-Cheol
Jang, Bo-Young
Sung, Jung-Suk
Quercetin and Isorhamnetin Reduce Benzo[a]pyrene-Induced Genotoxicity by Inducing RAD51 Expression through Downregulation of miR−34a
title Quercetin and Isorhamnetin Reduce Benzo[a]pyrene-Induced Genotoxicity by Inducing RAD51 Expression through Downregulation of miR−34a
title_full Quercetin and Isorhamnetin Reduce Benzo[a]pyrene-Induced Genotoxicity by Inducing RAD51 Expression through Downregulation of miR−34a
title_fullStr Quercetin and Isorhamnetin Reduce Benzo[a]pyrene-Induced Genotoxicity by Inducing RAD51 Expression through Downregulation of miR−34a
title_full_unstemmed Quercetin and Isorhamnetin Reduce Benzo[a]pyrene-Induced Genotoxicity by Inducing RAD51 Expression through Downregulation of miR−34a
title_short Quercetin and Isorhamnetin Reduce Benzo[a]pyrene-Induced Genotoxicity by Inducing RAD51 Expression through Downregulation of miR−34a
title_sort quercetin and isorhamnetin reduce benzo[a]pyrene-induced genotoxicity by inducing rad51 expression through downregulation of mir−34a
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9653982/
https://www.ncbi.nlm.nih.gov/pubmed/36361910
http://dx.doi.org/10.3390/ijms232113125
work_keys_str_mv AT kimmin quercetinandisorhamnetinreducebenzoapyreneinducedgenotoxicitybyinducingrad51expressionthroughdownregulationofmir34a
AT jeeseungcheol quercetinandisorhamnetinreducebenzoapyreneinducedgenotoxicitybyinducingrad51expressionthroughdownregulationofmir34a
AT shinminkyoung quercetinandisorhamnetinreducebenzoapyreneinducedgenotoxicitybyinducingrad51expressionthroughdownregulationofmir34a
AT handonghee quercetinandisorhamnetinreducebenzoapyreneinducedgenotoxicitybyinducingrad51expressionthroughdownregulationofmir34a
AT bukyungbin quercetinandisorhamnetinreducebenzoapyreneinducedgenotoxicitybyinducingrad51expressionthroughdownregulationofmir34a
AT leeseungcheol quercetinandisorhamnetinreducebenzoapyreneinducedgenotoxicitybyinducingrad51expressionthroughdownregulationofmir34a
AT jangboyoung quercetinandisorhamnetinreducebenzoapyreneinducedgenotoxicitybyinducingrad51expressionthroughdownregulationofmir34a
AT sungjungsuk quercetinandisorhamnetinreducebenzoapyreneinducedgenotoxicitybyinducingrad51expressionthroughdownregulationofmir34a