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ssDNA is an allosteric regulator of the C. crescentus SOS-independent DNA damage response transcription activator, DriD

DNA damage repair systems are critical for genomic integrity. However, they must be coordinated with DNA replication and cell division to ensure accurate genomic transmission. In most bacteria, this coordination is mediated by the SOS response through LexA, which triggers a halt in cell division unt...

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Autores principales: Gozzi, Kevin, Salinas, Raul, Nguyen, Viet D., Laub, Michael T., Schumacher, Maria A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9186387/
https://www.ncbi.nlm.nih.gov/pubmed/35618312
http://dx.doi.org/10.1101/gad.349541.122
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author Gozzi, Kevin
Salinas, Raul
Nguyen, Viet D.
Laub, Michael T.
Schumacher, Maria A.
author_facet Gozzi, Kevin
Salinas, Raul
Nguyen, Viet D.
Laub, Michael T.
Schumacher, Maria A.
author_sort Gozzi, Kevin
collection PubMed
description DNA damage repair systems are critical for genomic integrity. However, they must be coordinated with DNA replication and cell division to ensure accurate genomic transmission. In most bacteria, this coordination is mediated by the SOS response through LexA, which triggers a halt in cell division until repair is completed. Recently, an SOS-independent damage response system was revealed in Caulobacter crescentus. This pathway is controlled by the transcription activator, DriD, but how DriD senses and signals DNA damage is unknown. To address this question, we performed biochemical, cellular, and structural studies. We show that DriD binds a specific promoter DNA site via its N-terminal HTH domain to activate transcription of genes, including the cell division inhibitor didA. A structure of the C-terminal portion of DriD revealed a WYL motif domain linked to a WCX dimerization domain. Strikingly, we found that DriD binds ssDNA between the WYL and WCX domains. Comparison of apo and ssDNA-bound DriD structures reveals that ssDNA binding orders and orients the DriD domains, indicating a mechanism for ssDNA-mediated operator DNA binding activation. Biochemical and in vivo studies support the structural model. Our data thus reveal the molecular mechanism underpinning an SOS-independent DNA damage repair pathway.
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spelling pubmed-91863872022-06-16 ssDNA is an allosteric regulator of the C. crescentus SOS-independent DNA damage response transcription activator, DriD Gozzi, Kevin Salinas, Raul Nguyen, Viet D. Laub, Michael T. Schumacher, Maria A. Genes Dev Research Paper DNA damage repair systems are critical for genomic integrity. However, they must be coordinated with DNA replication and cell division to ensure accurate genomic transmission. In most bacteria, this coordination is mediated by the SOS response through LexA, which triggers a halt in cell division until repair is completed. Recently, an SOS-independent damage response system was revealed in Caulobacter crescentus. This pathway is controlled by the transcription activator, DriD, but how DriD senses and signals DNA damage is unknown. To address this question, we performed biochemical, cellular, and structural studies. We show that DriD binds a specific promoter DNA site via its N-terminal HTH domain to activate transcription of genes, including the cell division inhibitor didA. A structure of the C-terminal portion of DriD revealed a WYL motif domain linked to a WCX dimerization domain. Strikingly, we found that DriD binds ssDNA between the WYL and WCX domains. Comparison of apo and ssDNA-bound DriD structures reveals that ssDNA binding orders and orients the DriD domains, indicating a mechanism for ssDNA-mediated operator DNA binding activation. Biochemical and in vivo studies support the structural model. Our data thus reveal the molecular mechanism underpinning an SOS-independent DNA damage repair pathway. Cold Spring Harbor Laboratory Press 2022-05-01 /pmc/articles/PMC9186387/ /pubmed/35618312 http://dx.doi.org/10.1101/gad.349541.122 Text en © 2022 Gozzi et al.; Published by Cold Spring Harbor Laboratory Press https://creativecommons.org/licenses/by-nc/4.0/This article, published in Genes & Development, is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) .
spellingShingle Research Paper
Gozzi, Kevin
Salinas, Raul
Nguyen, Viet D.
Laub, Michael T.
Schumacher, Maria A.
ssDNA is an allosteric regulator of the C. crescentus SOS-independent DNA damage response transcription activator, DriD
title ssDNA is an allosteric regulator of the C. crescentus SOS-independent DNA damage response transcription activator, DriD
title_full ssDNA is an allosteric regulator of the C. crescentus SOS-independent DNA damage response transcription activator, DriD
title_fullStr ssDNA is an allosteric regulator of the C. crescentus SOS-independent DNA damage response transcription activator, DriD
title_full_unstemmed ssDNA is an allosteric regulator of the C. crescentus SOS-independent DNA damage response transcription activator, DriD
title_short ssDNA is an allosteric regulator of the C. crescentus SOS-independent DNA damage response transcription activator, DriD
title_sort ssdna is an allosteric regulator of the c. crescentus sos-independent dna damage response transcription activator, drid
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9186387/
https://www.ncbi.nlm.nih.gov/pubmed/35618312
http://dx.doi.org/10.1101/gad.349541.122
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