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MYBL2-Driven Transcriptional Programs Link Replication Stress and Error-prone DNA Repair With Genomic Instability in Lung Adenocarcinoma

It has long been recognized that defects in cell cycle checkpoint and DNA repair pathways give rise to genomic instability, tumor heterogeneity, and metastasis. Despite this knowledge, the transcription factor-mediated gene expression programs that enable survival and proliferation in the face of en...

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Autores principales: Morris, Benjamin B., Wages, Nolan A., Grant, Patrick A., Stukenberg, P. Todd, Gentzler, Ryan D., Hall, Richard D., Akerley, Wallace L., Varghese, Thomas K., Arnold, Susanne M., Williams, Terence M., Coppola, Vincenzo, Jones, David R., Auble, David T., Mayo, Marty W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7821388/
https://www.ncbi.nlm.nih.gov/pubmed/33489883
http://dx.doi.org/10.3389/fonc.2020.585551
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author Morris, Benjamin B.
Wages, Nolan A.
Grant, Patrick A.
Stukenberg, P. Todd
Gentzler, Ryan D.
Hall, Richard D.
Akerley, Wallace L.
Varghese, Thomas K.
Arnold, Susanne M.
Williams, Terence M.
Coppola, Vincenzo
Jones, David R.
Auble, David T.
Mayo, Marty W.
author_facet Morris, Benjamin B.
Wages, Nolan A.
Grant, Patrick A.
Stukenberg, P. Todd
Gentzler, Ryan D.
Hall, Richard D.
Akerley, Wallace L.
Varghese, Thomas K.
Arnold, Susanne M.
Williams, Terence M.
Coppola, Vincenzo
Jones, David R.
Auble, David T.
Mayo, Marty W.
author_sort Morris, Benjamin B.
collection PubMed
description It has long been recognized that defects in cell cycle checkpoint and DNA repair pathways give rise to genomic instability, tumor heterogeneity, and metastasis. Despite this knowledge, the transcription factor-mediated gene expression programs that enable survival and proliferation in the face of enormous replication stress and DNA damage have remained elusive. Using robust omics data from two independent studies, we provide evidence that a large cohort of lung adenocarcinomas exhibit significant genome instability and overexpress the DNA damage responsive transcription factor MYB proto-oncogene like 2 (MYBL2). Across two studies, elevated MYBL2 expression was a robust marker of poor overall survival and disease-free survival outcomes, regardless of disease stage. Clinically, elevated MYBL2 expression identified patients with aggressive early onset disease, increased lymph node involvement, and increased incidence of distant metastases. Analysis of genomic sequencing data demonstrated that MYBL2 High lung adenocarcinomas had elevated somatic mutation burden, widespread chromosomal alterations, and alterations in single-strand DNA break repair pathways. In this study, we provide evidence that impaired single-strand break repair, combined with a loss of cell cycle regulators TP53 and RB1, give rise to MYBL2-mediated transcriptional programs. Omics data supports a model wherein tumors with significant genomic instability upregulate MYBL2 to drive genes that control replication stress responses, promote error-prone DNA repair, and antagonize faithful homologous recombination repair. Our study supports the use of checkpoint kinase 1 (CHK1) pharmacological inhibitors, in targeted MYBL2 High patient cohorts, as a future therapy to improve lung adenocarcinoma patient outcomes.
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spelling pubmed-78213882021-01-23 MYBL2-Driven Transcriptional Programs Link Replication Stress and Error-prone DNA Repair With Genomic Instability in Lung Adenocarcinoma Morris, Benjamin B. Wages, Nolan A. Grant, Patrick A. Stukenberg, P. Todd Gentzler, Ryan D. Hall, Richard D. Akerley, Wallace L. Varghese, Thomas K. Arnold, Susanne M. Williams, Terence M. Coppola, Vincenzo Jones, David R. Auble, David T. Mayo, Marty W. Front Oncol Oncology It has long been recognized that defects in cell cycle checkpoint and DNA repair pathways give rise to genomic instability, tumor heterogeneity, and metastasis. Despite this knowledge, the transcription factor-mediated gene expression programs that enable survival and proliferation in the face of enormous replication stress and DNA damage have remained elusive. Using robust omics data from two independent studies, we provide evidence that a large cohort of lung adenocarcinomas exhibit significant genome instability and overexpress the DNA damage responsive transcription factor MYB proto-oncogene like 2 (MYBL2). Across two studies, elevated MYBL2 expression was a robust marker of poor overall survival and disease-free survival outcomes, regardless of disease stage. Clinically, elevated MYBL2 expression identified patients with aggressive early onset disease, increased lymph node involvement, and increased incidence of distant metastases. Analysis of genomic sequencing data demonstrated that MYBL2 High lung adenocarcinomas had elevated somatic mutation burden, widespread chromosomal alterations, and alterations in single-strand DNA break repair pathways. In this study, we provide evidence that impaired single-strand break repair, combined with a loss of cell cycle regulators TP53 and RB1, give rise to MYBL2-mediated transcriptional programs. Omics data supports a model wherein tumors with significant genomic instability upregulate MYBL2 to drive genes that control replication stress responses, promote error-prone DNA repair, and antagonize faithful homologous recombination repair. Our study supports the use of checkpoint kinase 1 (CHK1) pharmacological inhibitors, in targeted MYBL2 High patient cohorts, as a future therapy to improve lung adenocarcinoma patient outcomes. Frontiers Media S.A. 2021-01-08 /pmc/articles/PMC7821388/ /pubmed/33489883 http://dx.doi.org/10.3389/fonc.2020.585551 Text en Copyright © 2021 Morris, Wages, Grant, Stukenberg, Gentzler, Hall, Akerley, Varghese, Arnold, Williams, Coppola, Jones, Auble and Mayo http://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
Morris, Benjamin B.
Wages, Nolan A.
Grant, Patrick A.
Stukenberg, P. Todd
Gentzler, Ryan D.
Hall, Richard D.
Akerley, Wallace L.
Varghese, Thomas K.
Arnold, Susanne M.
Williams, Terence M.
Coppola, Vincenzo
Jones, David R.
Auble, David T.
Mayo, Marty W.
MYBL2-Driven Transcriptional Programs Link Replication Stress and Error-prone DNA Repair With Genomic Instability in Lung Adenocarcinoma
title MYBL2-Driven Transcriptional Programs Link Replication Stress and Error-prone DNA Repair With Genomic Instability in Lung Adenocarcinoma
title_full MYBL2-Driven Transcriptional Programs Link Replication Stress and Error-prone DNA Repair With Genomic Instability in Lung Adenocarcinoma
title_fullStr MYBL2-Driven Transcriptional Programs Link Replication Stress and Error-prone DNA Repair With Genomic Instability in Lung Adenocarcinoma
title_full_unstemmed MYBL2-Driven Transcriptional Programs Link Replication Stress and Error-prone DNA Repair With Genomic Instability in Lung Adenocarcinoma
title_short MYBL2-Driven Transcriptional Programs Link Replication Stress and Error-prone DNA Repair With Genomic Instability in Lung Adenocarcinoma
title_sort mybl2-driven transcriptional programs link replication stress and error-prone dna repair with genomic instability in lung adenocarcinoma
topic Oncology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7821388/
https://www.ncbi.nlm.nih.gov/pubmed/33489883
http://dx.doi.org/10.3389/fonc.2020.585551
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