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β-catenin represses miR455-3p to stimulate m6A modification of HSF1 mRNA and promote its translation in colorectal cancer

BACKGROUND: Heat shock transcription factor1 (HSF1) was overexpressed to promote glutaminolysis and activate mTOR in colorectal cancer (CRC). Here, we investigated the mechanism for cancer-specific overexpression of HSF1. METHODS: HSF1 expression was analyzed by chromatin immunoprecipitation, qRT-PC...

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Autores principales: Song, Ping, Feng, Lifeng, Li, Jiaqiu, Dai, Dongjun, Zhu, Liyuan, Wang, Chaoqun, Li, Jingyi, Li, Ling, Zhou, Qiyin, Shi, Rongkai, Wang, Xian, Jin, Hongchuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2020
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7446108/
https://www.ncbi.nlm.nih.gov/pubmed/32838807
http://dx.doi.org/10.1186/s12943-020-01244-z
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author Song, Ping
Feng, Lifeng
Li, Jiaqiu
Dai, Dongjun
Zhu, Liyuan
Wang, Chaoqun
Li, Jingyi
Li, Ling
Zhou, Qiyin
Shi, Rongkai
Wang, Xian
Jin, Hongchuan
author_facet Song, Ping
Feng, Lifeng
Li, Jiaqiu
Dai, Dongjun
Zhu, Liyuan
Wang, Chaoqun
Li, Jingyi
Li, Ling
Zhou, Qiyin
Shi, Rongkai
Wang, Xian
Jin, Hongchuan
author_sort Song, Ping
collection PubMed
description BACKGROUND: Heat shock transcription factor1 (HSF1) was overexpressed to promote glutaminolysis and activate mTOR in colorectal cancer (CRC). Here, we investigated the mechanism for cancer-specific overexpression of HSF1. METHODS: HSF1 expression was analyzed by chromatin immunoprecipitation, qRT-PCR, immunohistochemistry staining and immunoblotting. HSF1 translation was explored by polysome profiling and nascent protein analysis. Biotin pulldown and m6A RNA immunoprecipitation were applied to investigate RNA/RNA interaction and m6A modification. The relevance of HSF1 to CRC was analyzed in APC(min/+) and APC(min/+) HSF1(+/−)mice. RESULTS: HSF1 expression and activity were reduced after the inhibition of WNT/β-catenin signaling by pyrvinium or β-catenin knockdown, but elevated upon its activation by lithium chloride (LiCl) or β-catenin overexpression. There are much less upregulated genes in HSF1-KO MEF treated with LiCl when compared with LiCl-treated WT MEF. HSF1 protein expression was positively correlated with β-catenin expression in cell lines and primary tissues. After β-catenin depletion, HSF1 mRNA translation was impaired, accompanied by the reduction of its m6A modification and the upregulation of miR455-3p, which can interact with 3′-UTR of HSF1 mRNA to repress its translation. Interestingly, inhibition of miR455-3p rescued β-catenin depletion-induced reduction of HSF1 m6A modification and METTL3 interaction. Both the size and number of tumors were significantly reduced in APC(min/+) mice when HSF1 was genetically knocked-out or chemically inhibited. CONCLUSIONS: β-catenin suppresses miR455-3p generation to stimulate m6A modification and subsequent translation of HSF1 mRNA. HSF1 is important for β-catenin to promote CRC development. Targeting HSF1 could be a potential strategy for the intervention of β-catenin-driven cancers.
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spelling pubmed-74461082020-08-26 β-catenin represses miR455-3p to stimulate m6A modification of HSF1 mRNA and promote its translation in colorectal cancer Song, Ping Feng, Lifeng Li, Jiaqiu Dai, Dongjun Zhu, Liyuan Wang, Chaoqun Li, Jingyi Li, Ling Zhou, Qiyin Shi, Rongkai Wang, Xian Jin, Hongchuan Mol Cancer Research BACKGROUND: Heat shock transcription factor1 (HSF1) was overexpressed to promote glutaminolysis and activate mTOR in colorectal cancer (CRC). Here, we investigated the mechanism for cancer-specific overexpression of HSF1. METHODS: HSF1 expression was analyzed by chromatin immunoprecipitation, qRT-PCR, immunohistochemistry staining and immunoblotting. HSF1 translation was explored by polysome profiling and nascent protein analysis. Biotin pulldown and m6A RNA immunoprecipitation were applied to investigate RNA/RNA interaction and m6A modification. The relevance of HSF1 to CRC was analyzed in APC(min/+) and APC(min/+) HSF1(+/−)mice. RESULTS: HSF1 expression and activity were reduced after the inhibition of WNT/β-catenin signaling by pyrvinium or β-catenin knockdown, but elevated upon its activation by lithium chloride (LiCl) or β-catenin overexpression. There are much less upregulated genes in HSF1-KO MEF treated with LiCl when compared with LiCl-treated WT MEF. HSF1 protein expression was positively correlated with β-catenin expression in cell lines and primary tissues. After β-catenin depletion, HSF1 mRNA translation was impaired, accompanied by the reduction of its m6A modification and the upregulation of miR455-3p, which can interact with 3′-UTR of HSF1 mRNA to repress its translation. Interestingly, inhibition of miR455-3p rescued β-catenin depletion-induced reduction of HSF1 m6A modification and METTL3 interaction. Both the size and number of tumors were significantly reduced in APC(min/+) mice when HSF1 was genetically knocked-out or chemically inhibited. CONCLUSIONS: β-catenin suppresses miR455-3p generation to stimulate m6A modification and subsequent translation of HSF1 mRNA. HSF1 is important for β-catenin to promote CRC development. Targeting HSF1 could be a potential strategy for the intervention of β-catenin-driven cancers. BioMed Central 2020-08-24 /pmc/articles/PMC7446108/ /pubmed/32838807 http://dx.doi.org/10.1186/s12943-020-01244-z Text en © The Author(s) 2020 Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated in a credit line to the data.
spellingShingle Research
Song, Ping
Feng, Lifeng
Li, Jiaqiu
Dai, Dongjun
Zhu, Liyuan
Wang, Chaoqun
Li, Jingyi
Li, Ling
Zhou, Qiyin
Shi, Rongkai
Wang, Xian
Jin, Hongchuan
β-catenin represses miR455-3p to stimulate m6A modification of HSF1 mRNA and promote its translation in colorectal cancer
title β-catenin represses miR455-3p to stimulate m6A modification of HSF1 mRNA and promote its translation in colorectal cancer
title_full β-catenin represses miR455-3p to stimulate m6A modification of HSF1 mRNA and promote its translation in colorectal cancer
title_fullStr β-catenin represses miR455-3p to stimulate m6A modification of HSF1 mRNA and promote its translation in colorectal cancer
title_full_unstemmed β-catenin represses miR455-3p to stimulate m6A modification of HSF1 mRNA and promote its translation in colorectal cancer
title_short β-catenin represses miR455-3p to stimulate m6A modification of HSF1 mRNA and promote its translation in colorectal cancer
title_sort β-catenin represses mir455-3p to stimulate m6a modification of hsf1 mrna and promote its translation in colorectal cancer
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7446108/
https://www.ncbi.nlm.nih.gov/pubmed/32838807
http://dx.doi.org/10.1186/s12943-020-01244-z
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