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Screening and Identification of Human Endogenous Retrovirus-K mRNAs for Breast Cancer Through Integrative Analysis of Multiple Datasets

OBJECTIVE: Human endogenous retroviruses (HERVs) make up 8% of the human genome. HERVs are biologically active elements related to multiple diseases. HERV-K, a subfamily of HERVs, has been associated with certain types of cancer and suggested as an immunologic target in some tumors. The expression l...

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Autores principales: Wei, Yongzhong, Wei, Huilin, Wei, Yinfeng, Tan, Aihua, Chen, Xiuyong, Liao, Xiuquan, Xie, Bo, Wei, Xihua, Li, Lanxiang, Liu, Zengjing, Dai, Shengkang, Khan, Adil, Pang, Xianwu, Hassan, Nada M. A., Xiong, Kai, Zhang, Kai, Leng, Jing, Lv, Jiannan, Hu, Yanling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8900282/
https://www.ncbi.nlm.nih.gov/pubmed/35265522
http://dx.doi.org/10.3389/fonc.2022.820883
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author Wei, Yongzhong
Wei, Huilin
Wei, Yinfeng
Tan, Aihua
Chen, Xiuyong
Liao, Xiuquan
Xie, Bo
Wei, Xihua
Li, Lanxiang
Liu, Zengjing
Dai, Shengkang
Khan, Adil
Pang, Xianwu
Hassan, Nada M. A.
Xiong, Kai
Zhang, Kai
Leng, Jing
Lv, Jiannan
Hu, Yanling
author_facet Wei, Yongzhong
Wei, Huilin
Wei, Yinfeng
Tan, Aihua
Chen, Xiuyong
Liao, Xiuquan
Xie, Bo
Wei, Xihua
Li, Lanxiang
Liu, Zengjing
Dai, Shengkang
Khan, Adil
Pang, Xianwu
Hassan, Nada M. A.
Xiong, Kai
Zhang, Kai
Leng, Jing
Lv, Jiannan
Hu, Yanling
author_sort Wei, Yongzhong
collection PubMed
description OBJECTIVE: Human endogenous retroviruses (HERVs) make up 8% of the human genome. HERVs are biologically active elements related to multiple diseases. HERV-K, a subfamily of HERVs, has been associated with certain types of cancer and suggested as an immunologic target in some tumors. The expression levels of HERV-K in breast cancer (BCa) have been studied as biomarkers and immunologic therapeutic targets. However, HERV-K has multiple copies in the human genome, and few studies determined the transcriptional profile of HERV-K copies across the human genome for BCa. METHODS: Ninety-one HERV-K indexes with entire proviral sequences were used as the reference database. Nine raw sequencing datasets with 243 BCa and 137 control samples were mapped to this database by Salmon software. The differential proviral expression across several groups was analyzed by DESeq2 software. RESULTS: First, the clustering of each dataset demonstrated that these 91 HERV-K proviruses could well cluster the BCa and control samples when the normal controls were normal cells or healthy donor tissues. Second, several common HERV-K proviruses that are closely related with BCa risk were significantly differentially expressed (p(adj) < 0.05 and absolute log2FC > 1.5) in the tissues and cell lines. Additionally, almost all the HERV-K proviruses had higher expression in BCa tissue than in healthy donor tissue. Notably, we first found the expression of 17p13.1 provirus that located with TP53 should regulate TP53 expression in ER+ and HER2+ BCa. CONCLUSION: The expression profiling of these 91 HERV-K proviruses can be used as biomarkers to distinguish individuals with BCa and healthy controls. Some proviruses, especially 17p13.1, were strongly associated with BCa risk. The results suggest that HERV-K expression profiles may be appropriate biomarkers and targets for BCa.
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spelling pubmed-89002822022-03-08 Screening and Identification of Human Endogenous Retrovirus-K mRNAs for Breast Cancer Through Integrative Analysis of Multiple Datasets Wei, Yongzhong Wei, Huilin Wei, Yinfeng Tan, Aihua Chen, Xiuyong Liao, Xiuquan Xie, Bo Wei, Xihua Li, Lanxiang Liu, Zengjing Dai, Shengkang Khan, Adil Pang, Xianwu Hassan, Nada M. A. Xiong, Kai Zhang, Kai Leng, Jing Lv, Jiannan Hu, Yanling Front Oncol Oncology OBJECTIVE: Human endogenous retroviruses (HERVs) make up 8% of the human genome. HERVs are biologically active elements related to multiple diseases. HERV-K, a subfamily of HERVs, has been associated with certain types of cancer and suggested as an immunologic target in some tumors. The expression levels of HERV-K in breast cancer (BCa) have been studied as biomarkers and immunologic therapeutic targets. However, HERV-K has multiple copies in the human genome, and few studies determined the transcriptional profile of HERV-K copies across the human genome for BCa. METHODS: Ninety-one HERV-K indexes with entire proviral sequences were used as the reference database. Nine raw sequencing datasets with 243 BCa and 137 control samples were mapped to this database by Salmon software. The differential proviral expression across several groups was analyzed by DESeq2 software. RESULTS: First, the clustering of each dataset demonstrated that these 91 HERV-K proviruses could well cluster the BCa and control samples when the normal controls were normal cells or healthy donor tissues. Second, several common HERV-K proviruses that are closely related with BCa risk were significantly differentially expressed (p(adj) < 0.05 and absolute log2FC > 1.5) in the tissues and cell lines. Additionally, almost all the HERV-K proviruses had higher expression in BCa tissue than in healthy donor tissue. Notably, we first found the expression of 17p13.1 provirus that located with TP53 should regulate TP53 expression in ER+ and HER2+ BCa. CONCLUSION: The expression profiling of these 91 HERV-K proviruses can be used as biomarkers to distinguish individuals with BCa and healthy controls. Some proviruses, especially 17p13.1, were strongly associated with BCa risk. The results suggest that HERV-K expression profiles may be appropriate biomarkers and targets for BCa. Frontiers Media S.A. 2022-02-16 /pmc/articles/PMC8900282/ /pubmed/35265522 http://dx.doi.org/10.3389/fonc.2022.820883 Text en Copyright © 2022 Wei, Wei, Wei, Tan, Chen, Liao, Xie, Wei, Li, Liu, Dai, Khan, Pang, Hassan, Xiong, Zhang, Leng, Lv and Hu https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Oncology
Wei, Yongzhong
Wei, Huilin
Wei, Yinfeng
Tan, Aihua
Chen, Xiuyong
Liao, Xiuquan
Xie, Bo
Wei, Xihua
Li, Lanxiang
Liu, Zengjing
Dai, Shengkang
Khan, Adil
Pang, Xianwu
Hassan, Nada M. A.
Xiong, Kai
Zhang, Kai
Leng, Jing
Lv, Jiannan
Hu, Yanling
Screening and Identification of Human Endogenous Retrovirus-K mRNAs for Breast Cancer Through Integrative Analysis of Multiple Datasets
title Screening and Identification of Human Endogenous Retrovirus-K mRNAs for Breast Cancer Through Integrative Analysis of Multiple Datasets
title_full Screening and Identification of Human Endogenous Retrovirus-K mRNAs for Breast Cancer Through Integrative Analysis of Multiple Datasets
title_fullStr Screening and Identification of Human Endogenous Retrovirus-K mRNAs for Breast Cancer Through Integrative Analysis of Multiple Datasets
title_full_unstemmed Screening and Identification of Human Endogenous Retrovirus-K mRNAs for Breast Cancer Through Integrative Analysis of Multiple Datasets
title_short Screening and Identification of Human Endogenous Retrovirus-K mRNAs for Breast Cancer Through Integrative Analysis of Multiple Datasets
title_sort screening and identification of human endogenous retrovirus-k mrnas for breast cancer through integrative analysis of multiple datasets
topic Oncology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8900282/
https://www.ncbi.nlm.nih.gov/pubmed/35265522
http://dx.doi.org/10.3389/fonc.2022.820883
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