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DNA-binding landscape of IRF3, IRF5 and IRF7 dimers: implications for dimer-specific gene regulation

Transcription factors IRF3, IRF5 and IRF7 (IRF3/5/7) have overlapping, yet distinct, roles in the mammalian response to pathogens. To examine the role that DNA-binding specificity plays in delineating IRF3/5/7-specific gene regulation we used protein-binding microarrays (PBMs) to characterize the DN...

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Autores principales: Andrilenas, Kellen K, Ramlall, Vijendra, Kurland, Jesse, Leung, Brandon, Harbaugh, Allen G, Siggers, Trevor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5861432/
https://www.ncbi.nlm.nih.gov/pubmed/29361124
http://dx.doi.org/10.1093/nar/gky002
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author Andrilenas, Kellen K
Ramlall, Vijendra
Kurland, Jesse
Leung, Brandon
Harbaugh, Allen G
Siggers, Trevor
author_facet Andrilenas, Kellen K
Ramlall, Vijendra
Kurland, Jesse
Leung, Brandon
Harbaugh, Allen G
Siggers, Trevor
author_sort Andrilenas, Kellen K
collection PubMed
description Transcription factors IRF3, IRF5 and IRF7 (IRF3/5/7) have overlapping, yet distinct, roles in the mammalian response to pathogens. To examine the role that DNA-binding specificity plays in delineating IRF3/5/7-specific gene regulation we used protein-binding microarrays (PBMs) to characterize the DNA binding of IRF3/5/7 homodimers. We identified both common and dimer-specific DNA binding sites, and show that DNA-binding differences can translate into dimer-specific gene regulation. Central to the antiviral response, IRF3/5/7 regulate type I interferon (IFN) genes. We show that IRF3 and IRF7 bind to many interferon-stimulated response element (ISRE)-type sites in the virus-response elements (VREs) of IFN promoters. However, strikingly, IRF5 does not bind the VREs, suggesting evolutionary selection against IRF5 homodimer binding. Mutational analysis reveals a critical specificity-determining residue that inhibits IRF5 binding to the ISRE-variants present in the IFN gene promoters. Integrating PBM and reporter gene data we find that both DNA-binding affinity and affinity-independent mechanisms determine the function of DNA-bound IRF dimers, suggesting that DNA-based allostery plays a role in IRF binding site function. Our results provide new insights into the role and limitations of DNA-binding affinity in delineating IRF3/5/7-specific gene expression.
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spelling pubmed-58614322018-03-28 DNA-binding landscape of IRF3, IRF5 and IRF7 dimers: implications for dimer-specific gene regulation Andrilenas, Kellen K Ramlall, Vijendra Kurland, Jesse Leung, Brandon Harbaugh, Allen G Siggers, Trevor Nucleic Acids Res Molecular Biology Transcription factors IRF3, IRF5 and IRF7 (IRF3/5/7) have overlapping, yet distinct, roles in the mammalian response to pathogens. To examine the role that DNA-binding specificity plays in delineating IRF3/5/7-specific gene regulation we used protein-binding microarrays (PBMs) to characterize the DNA binding of IRF3/5/7 homodimers. We identified both common and dimer-specific DNA binding sites, and show that DNA-binding differences can translate into dimer-specific gene regulation. Central to the antiviral response, IRF3/5/7 regulate type I interferon (IFN) genes. We show that IRF3 and IRF7 bind to many interferon-stimulated response element (ISRE)-type sites in the virus-response elements (VREs) of IFN promoters. However, strikingly, IRF5 does not bind the VREs, suggesting evolutionary selection against IRF5 homodimer binding. Mutational analysis reveals a critical specificity-determining residue that inhibits IRF5 binding to the ISRE-variants present in the IFN gene promoters. Integrating PBM and reporter gene data we find that both DNA-binding affinity and affinity-independent mechanisms determine the function of DNA-bound IRF dimers, suggesting that DNA-based allostery plays a role in IRF binding site function. Our results provide new insights into the role and limitations of DNA-binding affinity in delineating IRF3/5/7-specific gene expression. Oxford University Press 2018-03-16 2018-01-18 /pmc/articles/PMC5861432/ /pubmed/29361124 http://dx.doi.org/10.1093/nar/gky002 Text en © The Author(s) 2018. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Molecular Biology
Andrilenas, Kellen K
Ramlall, Vijendra
Kurland, Jesse
Leung, Brandon
Harbaugh, Allen G
Siggers, Trevor
DNA-binding landscape of IRF3, IRF5 and IRF7 dimers: implications for dimer-specific gene regulation
title DNA-binding landscape of IRF3, IRF5 and IRF7 dimers: implications for dimer-specific gene regulation
title_full DNA-binding landscape of IRF3, IRF5 and IRF7 dimers: implications for dimer-specific gene regulation
title_fullStr DNA-binding landscape of IRF3, IRF5 and IRF7 dimers: implications for dimer-specific gene regulation
title_full_unstemmed DNA-binding landscape of IRF3, IRF5 and IRF7 dimers: implications for dimer-specific gene regulation
title_short DNA-binding landscape of IRF3, IRF5 and IRF7 dimers: implications for dimer-specific gene regulation
title_sort dna-binding landscape of irf3, irf5 and irf7 dimers: implications for dimer-specific gene regulation
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5861432/
https://www.ncbi.nlm.nih.gov/pubmed/29361124
http://dx.doi.org/10.1093/nar/gky002
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