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Transcriptional coupling (Mfd) and DNA damage scanning (DisA) coordinate excision repair events for efficient Bacillus subtilis spore outgrowth

The absence of base excision repair (BER) proteins involved in processing ROS‐promoted genetic insults activates a DNA damage scanning (DisA)‐dependent checkpoint event in outgrowing Bacillus subtilis spores. Here, we report that genetic disabling of transcription‐coupled repair (TCR) or nucleotide...

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Autores principales: Valenzuela‐García, Luz I., Ayala‐García, Víctor M., Regalado‐García, Ana G., Setlow, Peter, Pedraza‐Reyes, Mario
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6182552/
https://www.ncbi.nlm.nih.gov/pubmed/29536659
http://dx.doi.org/10.1002/mbo3.593
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author Valenzuela‐García, Luz I.
Ayala‐García, Víctor M.
Regalado‐García, Ana G.
Setlow, Peter
Pedraza‐Reyes, Mario
author_facet Valenzuela‐García, Luz I.
Ayala‐García, Víctor M.
Regalado‐García, Ana G.
Setlow, Peter
Pedraza‐Reyes, Mario
author_sort Valenzuela‐García, Luz I.
collection PubMed
description The absence of base excision repair (BER) proteins involved in processing ROS‐promoted genetic insults activates a DNA damage scanning (DisA)‐dependent checkpoint event in outgrowing Bacillus subtilis spores. Here, we report that genetic disabling of transcription‐coupled repair (TCR) or nucleotide excision repair (NER) pathways severely affected outgrowth of ΔdisA spores, and much more so than the effects of these mutations on log phase growth. This defect delayed the first division of spore′s nucleoid suggesting that unrepaired lesions affected transcription and/or replication during outgrowth. Accordingly, return to life of spores deficient in DisA/Mfd or DisA/UvrA was severely affected by a ROS‐inducer or a replication blocking agent, hydrogen peroxide and 4‐nitroquinoline‐oxide, respectively. Mutation frequencies to rifampin resistance (Rif(r)) revealed that DisA allowed faithful NER‐dependent DNA repair but activated error‐prone repair in TCR‐deficient outgrowing spores. Sequencing analysis of rpoB from spontaneous Rif(r) colonies revealed that mutations resulting from base deamination predominated in outgrowing wild‐type spores. Interestingly, a wide range of base substitutions promoted by oxidized DNA bases were detected in ΔdisA and Δmfd outgrown spores. Overall, our results suggest that Mfd and DisA coordinate excision repair events in spore outgrowth to eliminate DNA lesions that interfere with replication and transcription during this developmental period.
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spelling pubmed-61825522018-10-19 Transcriptional coupling (Mfd) and DNA damage scanning (DisA) coordinate excision repair events for efficient Bacillus subtilis spore outgrowth Valenzuela‐García, Luz I. Ayala‐García, Víctor M. Regalado‐García, Ana G. Setlow, Peter Pedraza‐Reyes, Mario Microbiologyopen Original Articles The absence of base excision repair (BER) proteins involved in processing ROS‐promoted genetic insults activates a DNA damage scanning (DisA)‐dependent checkpoint event in outgrowing Bacillus subtilis spores. Here, we report that genetic disabling of transcription‐coupled repair (TCR) or nucleotide excision repair (NER) pathways severely affected outgrowth of ΔdisA spores, and much more so than the effects of these mutations on log phase growth. This defect delayed the first division of spore′s nucleoid suggesting that unrepaired lesions affected transcription and/or replication during outgrowth. Accordingly, return to life of spores deficient in DisA/Mfd or DisA/UvrA was severely affected by a ROS‐inducer or a replication blocking agent, hydrogen peroxide and 4‐nitroquinoline‐oxide, respectively. Mutation frequencies to rifampin resistance (Rif(r)) revealed that DisA allowed faithful NER‐dependent DNA repair but activated error‐prone repair in TCR‐deficient outgrowing spores. Sequencing analysis of rpoB from spontaneous Rif(r) colonies revealed that mutations resulting from base deamination predominated in outgrowing wild‐type spores. Interestingly, a wide range of base substitutions promoted by oxidized DNA bases were detected in ΔdisA and Δmfd outgrown spores. Overall, our results suggest that Mfd and DisA coordinate excision repair events in spore outgrowth to eliminate DNA lesions that interfere with replication and transcription during this developmental period. John Wiley and Sons Inc. 2018-03-13 /pmc/articles/PMC6182552/ /pubmed/29536659 http://dx.doi.org/10.1002/mbo3.593 Text en © 2018 The Authors. MicrobiologyOpen published by John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Valenzuela‐García, Luz I.
Ayala‐García, Víctor M.
Regalado‐García, Ana G.
Setlow, Peter
Pedraza‐Reyes, Mario
Transcriptional coupling (Mfd) and DNA damage scanning (DisA) coordinate excision repair events for efficient Bacillus subtilis spore outgrowth
title Transcriptional coupling (Mfd) and DNA damage scanning (DisA) coordinate excision repair events for efficient Bacillus subtilis spore outgrowth
title_full Transcriptional coupling (Mfd) and DNA damage scanning (DisA) coordinate excision repair events for efficient Bacillus subtilis spore outgrowth
title_fullStr Transcriptional coupling (Mfd) and DNA damage scanning (DisA) coordinate excision repair events for efficient Bacillus subtilis spore outgrowth
title_full_unstemmed Transcriptional coupling (Mfd) and DNA damage scanning (DisA) coordinate excision repair events for efficient Bacillus subtilis spore outgrowth
title_short Transcriptional coupling (Mfd) and DNA damage scanning (DisA) coordinate excision repair events for efficient Bacillus subtilis spore outgrowth
title_sort transcriptional coupling (mfd) and dna damage scanning (disa) coordinate excision repair events for efficient bacillus subtilis spore outgrowth
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6182552/
https://www.ncbi.nlm.nih.gov/pubmed/29536659
http://dx.doi.org/10.1002/mbo3.593
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