Cargando…

TODRA, a lncRNA at the RAD51 Locus, Is Oppositely Regulated to RAD51, and Enhances RAD51-Dependent DSB (Double Strand Break) Repair

Expression of RAD51, a crucial player in homologous recombination (HR) and DNA double-strand break (DSB) repair, is dysregulated in human tumors, and can contribute to genomic instability and tumor progression. To further understand RAD51 regulation we functionally characterized a long non-coding (l...

Descripción completa

Detalles Bibliográficos
Autores principales: Gazy, Inbal, Zeevi, David A., Renbaum, Paul, Zeligson, Sharon, Eini, Lital, Bashari, Dana, Smith, Yoav, Lahad, Amnon, Goldberg, Michal, Ginsberg, Doron, Levy-Lahad, Ephrat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4521930/
https://www.ncbi.nlm.nih.gov/pubmed/26230935
http://dx.doi.org/10.1371/journal.pone.0134120
_version_ 1782383886293008384
author Gazy, Inbal
Zeevi, David A.
Renbaum, Paul
Zeligson, Sharon
Eini, Lital
Bashari, Dana
Smith, Yoav
Lahad, Amnon
Goldberg, Michal
Ginsberg, Doron
Levy-Lahad, Ephrat
author_facet Gazy, Inbal
Zeevi, David A.
Renbaum, Paul
Zeligson, Sharon
Eini, Lital
Bashari, Dana
Smith, Yoav
Lahad, Amnon
Goldberg, Michal
Ginsberg, Doron
Levy-Lahad, Ephrat
author_sort Gazy, Inbal
collection PubMed
description Expression of RAD51, a crucial player in homologous recombination (HR) and DNA double-strand break (DSB) repair, is dysregulated in human tumors, and can contribute to genomic instability and tumor progression. To further understand RAD51 regulation we functionally characterized a long non-coding (lnc) RNA, dubbed TODRA (Transcribed in the Opposite Direction of RA D51), transcribed 69bp upstream to RAD51, in the opposite direction. We demonstrate that TODRA is an expressed transcript and that the RAD51 promoter region is bidirectional, supporting TODRA expression (7-fold higher than RAD51 in this assay, p = 0.003). TODRA overexpression in HeLa cells induced expression of TPIP, a member of the TPTE family which includes PTEN. Similar to PTEN, we found that TPIP co-activates E2F1 induction of RAD51. Analysis of E2F1's effect on the bidirectional promoter showed that E2F1 binding to the same site that promotes RAD51 expression, results in downregulation of TODRA. Moreover, TODRA overexpression induces HR in a RAD51-dependent DSB repair assay, and increases formation of DNA damage-induced RAD51-positive foci. Importantly, gene expression in breast tumors supports our finding that E2F1 oppositely regulates RAD51 and TODRA: increased RAD51 expression, which is associated with an aggressive tumor phenotype (e.g. negative correlation with positive ER (r = -0.22, p = 0.02) and positive PR status (r = -0.27, p<0.001); positive correlation with ki67 status (r = 0.36, p = 0.005) and HER2 amplification (r = 0.41, p = 0.001)), correlates as expected with lower TODRA and higher E2F1 expression. However, although E2F1 induction resulted in TPIP downregulation in cell lines, we find that TPIP expression in tumors is not reduced despite higher E2F1 expression, perhaps contributing to increased RAD51 expression. Our results identify TPIP as a novel E2F1 co-activator, suggest a similar role for other TPTEs, and indicate that the TODRA lncRNA affects RAD51 dysregulation and RAD51-dependent DSB repair in malignancy. Importantly, gene expression in breast tumors supports our finding that E2F1 oppositely regulates RAD51 and TODRA: increased RAD51 expression, which is associated with an aggressive tumor phenotype (e.g. negative correlation with positive ER (r = -0.22, p = 0.02) and positive PR status (r = -0.27, p<0.001); positive correlation with ki67 status (r = 0.36, p = 0.005) and HER2 amplification (r = 0.41, p = 0.001)), correlates as expected with lower TODRA and higher E2F1 expression. However, although E2F1 induction resulted in TPIP downregulation in cell lines, we find that TPIP expression in tumors is not reduced despite higher E2F1 expression, perhaps contributing to increased RAD51 expression. Our results identify TPIP as a novel E2F1 co-activator, suggest a similar role for other TPTEs, and indicate that the TODRA lncRNA affects RAD51 dysregulation and RAD51-dependent DSB repair in malignancy.
format Online
Article
Text
id pubmed-4521930
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-45219302015-08-06 TODRA, a lncRNA at the RAD51 Locus, Is Oppositely Regulated to RAD51, and Enhances RAD51-Dependent DSB (Double Strand Break) Repair Gazy, Inbal Zeevi, David A. Renbaum, Paul Zeligson, Sharon Eini, Lital Bashari, Dana Smith, Yoav Lahad, Amnon Goldberg, Michal Ginsberg, Doron Levy-Lahad, Ephrat PLoS One Research Article Expression of RAD51, a crucial player in homologous recombination (HR) and DNA double-strand break (DSB) repair, is dysregulated in human tumors, and can contribute to genomic instability and tumor progression. To further understand RAD51 regulation we functionally characterized a long non-coding (lnc) RNA, dubbed TODRA (Transcribed in the Opposite Direction of RA D51), transcribed 69bp upstream to RAD51, in the opposite direction. We demonstrate that TODRA is an expressed transcript and that the RAD51 promoter region is bidirectional, supporting TODRA expression (7-fold higher than RAD51 in this assay, p = 0.003). TODRA overexpression in HeLa cells induced expression of TPIP, a member of the TPTE family which includes PTEN. Similar to PTEN, we found that TPIP co-activates E2F1 induction of RAD51. Analysis of E2F1's effect on the bidirectional promoter showed that E2F1 binding to the same site that promotes RAD51 expression, results in downregulation of TODRA. Moreover, TODRA overexpression induces HR in a RAD51-dependent DSB repair assay, and increases formation of DNA damage-induced RAD51-positive foci. Importantly, gene expression in breast tumors supports our finding that E2F1 oppositely regulates RAD51 and TODRA: increased RAD51 expression, which is associated with an aggressive tumor phenotype (e.g. negative correlation with positive ER (r = -0.22, p = 0.02) and positive PR status (r = -0.27, p<0.001); positive correlation with ki67 status (r = 0.36, p = 0.005) and HER2 amplification (r = 0.41, p = 0.001)), correlates as expected with lower TODRA and higher E2F1 expression. However, although E2F1 induction resulted in TPIP downregulation in cell lines, we find that TPIP expression in tumors is not reduced despite higher E2F1 expression, perhaps contributing to increased RAD51 expression. Our results identify TPIP as a novel E2F1 co-activator, suggest a similar role for other TPTEs, and indicate that the TODRA lncRNA affects RAD51 dysregulation and RAD51-dependent DSB repair in malignancy. Importantly, gene expression in breast tumors supports our finding that E2F1 oppositely regulates RAD51 and TODRA: increased RAD51 expression, which is associated with an aggressive tumor phenotype (e.g. negative correlation with positive ER (r = -0.22, p = 0.02) and positive PR status (r = -0.27, p<0.001); positive correlation with ki67 status (r = 0.36, p = 0.005) and HER2 amplification (r = 0.41, p = 0.001)), correlates as expected with lower TODRA and higher E2F1 expression. However, although E2F1 induction resulted in TPIP downregulation in cell lines, we find that TPIP expression in tumors is not reduced despite higher E2F1 expression, perhaps contributing to increased RAD51 expression. Our results identify TPIP as a novel E2F1 co-activator, suggest a similar role for other TPTEs, and indicate that the TODRA lncRNA affects RAD51 dysregulation and RAD51-dependent DSB repair in malignancy. Public Library of Science 2015-07-31 /pmc/articles/PMC4521930/ /pubmed/26230935 http://dx.doi.org/10.1371/journal.pone.0134120 Text en © 2015 Gazy et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Gazy, Inbal
Zeevi, David A.
Renbaum, Paul
Zeligson, Sharon
Eini, Lital
Bashari, Dana
Smith, Yoav
Lahad, Amnon
Goldberg, Michal
Ginsberg, Doron
Levy-Lahad, Ephrat
TODRA, a lncRNA at the RAD51 Locus, Is Oppositely Regulated to RAD51, and Enhances RAD51-Dependent DSB (Double Strand Break) Repair
title TODRA, a lncRNA at the RAD51 Locus, Is Oppositely Regulated to RAD51, and Enhances RAD51-Dependent DSB (Double Strand Break) Repair
title_full TODRA, a lncRNA at the RAD51 Locus, Is Oppositely Regulated to RAD51, and Enhances RAD51-Dependent DSB (Double Strand Break) Repair
title_fullStr TODRA, a lncRNA at the RAD51 Locus, Is Oppositely Regulated to RAD51, and Enhances RAD51-Dependent DSB (Double Strand Break) Repair
title_full_unstemmed TODRA, a lncRNA at the RAD51 Locus, Is Oppositely Regulated to RAD51, and Enhances RAD51-Dependent DSB (Double Strand Break) Repair
title_short TODRA, a lncRNA at the RAD51 Locus, Is Oppositely Regulated to RAD51, and Enhances RAD51-Dependent DSB (Double Strand Break) Repair
title_sort todra, a lncrna at the rad51 locus, is oppositely regulated to rad51, and enhances rad51-dependent dsb (double strand break) repair
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4521930/
https://www.ncbi.nlm.nih.gov/pubmed/26230935
http://dx.doi.org/10.1371/journal.pone.0134120
work_keys_str_mv AT gazyinbal todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT zeevidavida todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT renbaumpaul todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT zeligsonsharon todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT einilital todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT basharidana todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT smithyoav todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT lahadamnon todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT goldbergmichal todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT ginsbergdoron todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair
AT levylahadephrat todraalncrnaattherad51locusisoppositelyregulatedtorad51andenhancesrad51dependentdsbdoublestrandbreakrepair