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Dissection of a DNA-damage-induced transcriptional network using a combination of microarrays, RNA interference and computational promoter analysis

BACKGROUND: Gene-expression microarrays and RNA interferences (RNAi) are among the most prominent techniques in functional genomics. The combination of the two holds promise for systematic, large-scale dissection of transcriptional networks. Recent studies, however, raise the concern that nonspecifi...

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Autores principales: Elkon, Ran, Rashi-Elkeles, Sharon, Lerenthal, Yaniv, Linhart, Chaim, Tenne, Tamar, Amariglio, Ninette, Rechavi, Gideon, Shamir, Ron, Shiloh, Yosef
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1175955/
https://www.ncbi.nlm.nih.gov/pubmed/15892871
http://dx.doi.org/10.1186/gb-2005-6-5-r43
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author Elkon, Ran
Rashi-Elkeles, Sharon
Lerenthal, Yaniv
Linhart, Chaim
Tenne, Tamar
Amariglio, Ninette
Rechavi, Gideon
Shamir, Ron
Shiloh, Yosef
author_facet Elkon, Ran
Rashi-Elkeles, Sharon
Lerenthal, Yaniv
Linhart, Chaim
Tenne, Tamar
Amariglio, Ninette
Rechavi, Gideon
Shamir, Ron
Shiloh, Yosef
author_sort Elkon, Ran
collection PubMed
description BACKGROUND: Gene-expression microarrays and RNA interferences (RNAi) are among the most prominent techniques in functional genomics. The combination of the two holds promise for systematic, large-scale dissection of transcriptional networks. Recent studies, however, raise the concern that nonspecific responses to small interfering RNAs (siRNAs) might obscure the consequences of silencing the gene of interest, throwing into question the ability of this experimental strategy to achieve precise network dissections. RESULTS: We used microarrays and RNAi to dissect a transcriptional network induced by DNA damage in a human cellular system. We recorded expression profiles with and without exposure of the cells to a radiomimetic drug that induces DNA double-strand breaks (DSBs). Profiles were measured in control cells and in cells knocked-down for the Rel-A subunit of NFκB and for p53, two pivotal stress-induced transcription factors, and for the protein kinase ATM, the major transducer of the cellular responses to DSBs. We observed that NFκB and p53 mediated most of the damage-induced gene activation; that they controlled the activation of largely disjoint sets of genes; and that ATM was required for the activation of both pathways. Applying computational promoter analysis, we demonstrated that the dissection of the network into ATM/NFκB and ATM/p53-mediated arms was highly accurate. CONCLUSIONS: Our results demonstrate that the combined experimental strategy of expression arrays and RNAi is indeed a powerful method for the dissection of complex transcriptional networks, and that computational promoter analysis can provide a strong complementary means for assessing the accuracy of this dissection.
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spelling pubmed-11759552005-07-17 Dissection of a DNA-damage-induced transcriptional network using a combination of microarrays, RNA interference and computational promoter analysis Elkon, Ran Rashi-Elkeles, Sharon Lerenthal, Yaniv Linhart, Chaim Tenne, Tamar Amariglio, Ninette Rechavi, Gideon Shamir, Ron Shiloh, Yosef Genome Biol Research BACKGROUND: Gene-expression microarrays and RNA interferences (RNAi) are among the most prominent techniques in functional genomics. The combination of the two holds promise for systematic, large-scale dissection of transcriptional networks. Recent studies, however, raise the concern that nonspecific responses to small interfering RNAs (siRNAs) might obscure the consequences of silencing the gene of interest, throwing into question the ability of this experimental strategy to achieve precise network dissections. RESULTS: We used microarrays and RNAi to dissect a transcriptional network induced by DNA damage in a human cellular system. We recorded expression profiles with and without exposure of the cells to a radiomimetic drug that induces DNA double-strand breaks (DSBs). Profiles were measured in control cells and in cells knocked-down for the Rel-A subunit of NFκB and for p53, two pivotal stress-induced transcription factors, and for the protein kinase ATM, the major transducer of the cellular responses to DSBs. We observed that NFκB and p53 mediated most of the damage-induced gene activation; that they controlled the activation of largely disjoint sets of genes; and that ATM was required for the activation of both pathways. Applying computational promoter analysis, we demonstrated that the dissection of the network into ATM/NFκB and ATM/p53-mediated arms was highly accurate. CONCLUSIONS: Our results demonstrate that the combined experimental strategy of expression arrays and RNAi is indeed a powerful method for the dissection of complex transcriptional networks, and that computational promoter analysis can provide a strong complementary means for assessing the accuracy of this dissection. BioMed Central 2005 2005-04-13 /pmc/articles/PMC1175955/ /pubmed/15892871 http://dx.doi.org/10.1186/gb-2005-6-5-r43 Text en Copyright © 2005 Elkon et al.; licensee BioMed Central Ltd.
spellingShingle Research
Elkon, Ran
Rashi-Elkeles, Sharon
Lerenthal, Yaniv
Linhart, Chaim
Tenne, Tamar
Amariglio, Ninette
Rechavi, Gideon
Shamir, Ron
Shiloh, Yosef
Dissection of a DNA-damage-induced transcriptional network using a combination of microarrays, RNA interference and computational promoter analysis
title Dissection of a DNA-damage-induced transcriptional network using a combination of microarrays, RNA interference and computational promoter analysis
title_full Dissection of a DNA-damage-induced transcriptional network using a combination of microarrays, RNA interference and computational promoter analysis
title_fullStr Dissection of a DNA-damage-induced transcriptional network using a combination of microarrays, RNA interference and computational promoter analysis
title_full_unstemmed Dissection of a DNA-damage-induced transcriptional network using a combination of microarrays, RNA interference and computational promoter analysis
title_short Dissection of a DNA-damage-induced transcriptional network using a combination of microarrays, RNA interference and computational promoter analysis
title_sort dissection of a dna-damage-induced transcriptional network using a combination of microarrays, rna interference and computational promoter analysis
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1175955/
https://www.ncbi.nlm.nih.gov/pubmed/15892871
http://dx.doi.org/10.1186/gb-2005-6-5-r43
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