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Uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes

In growing cells, DNA replication precedes mitotic cell division to transmit genetic information to the next generation. The slowing or stalling of DNA replication forks at natural or exogenous obstacles causes “replicative stress” that promotes genomic instability and affects cellular fitness. Repl...

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Autores principales: Rodriguez-Acebes, Sara, Mourón, Silvana, Méndez, Juan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6102153/
https://www.ncbi.nlm.nih.gov/pubmed/29959228
http://dx.doi.org/10.1074/jbc.RA118.003740
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author Rodriguez-Acebes, Sara
Mourón, Silvana
Méndez, Juan
author_facet Rodriguez-Acebes, Sara
Mourón, Silvana
Méndez, Juan
author_sort Rodriguez-Acebes, Sara
collection PubMed
description In growing cells, DNA replication precedes mitotic cell division to transmit genetic information to the next generation. The slowing or stalling of DNA replication forks at natural or exogenous obstacles causes “replicative stress” that promotes genomic instability and affects cellular fitness. Replicative stress phenotypes can be characterized at the single-molecule level with DNA combing or stretched DNA fibers, but interpreting the results obtained with these approaches is complicated by the fact that the speed of replication forks is connected to the frequency of origin activation. Primary alterations in fork speed trigger secondary responses in origins, and, conversely, primary alterations in the number of active origins induce compensatory changes in fork speed. Here, by employing interventions that temporally restrict either fork speed or origin firing while still allowing interrogation of the other variable, we report a set of experimental conditions to separate cause and effect in any manipulation that affects DNA replication dynamics. Using HeLa cells and chemical inhibition of origin activity (through a CDC7 kinase inhibitor) and of DNA synthesis (via the DNA polymerase inhibitor aphidicolin), we found that primary effects of replicative stress on velocity of replisomes (fork rate) can be readily distinguished from primary effects on origin firing. Identifying the primary cause of replicative stress in each case as demonstrated here may facilitate the design of methods to counteract replication stress in primary cells or to enhance it in cancer cells to increase their susceptibility to therapies that target DNA repair.
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spelling pubmed-61021532018-08-21 Uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes Rodriguez-Acebes, Sara Mourón, Silvana Méndez, Juan J Biol Chem DNA and Chromosomes In growing cells, DNA replication precedes mitotic cell division to transmit genetic information to the next generation. The slowing or stalling of DNA replication forks at natural or exogenous obstacles causes “replicative stress” that promotes genomic instability and affects cellular fitness. Replicative stress phenotypes can be characterized at the single-molecule level with DNA combing or stretched DNA fibers, but interpreting the results obtained with these approaches is complicated by the fact that the speed of replication forks is connected to the frequency of origin activation. Primary alterations in fork speed trigger secondary responses in origins, and, conversely, primary alterations in the number of active origins induce compensatory changes in fork speed. Here, by employing interventions that temporally restrict either fork speed or origin firing while still allowing interrogation of the other variable, we report a set of experimental conditions to separate cause and effect in any manipulation that affects DNA replication dynamics. Using HeLa cells and chemical inhibition of origin activity (through a CDC7 kinase inhibitor) and of DNA synthesis (via the DNA polymerase inhibitor aphidicolin), we found that primary effects of replicative stress on velocity of replisomes (fork rate) can be readily distinguished from primary effects on origin firing. Identifying the primary cause of replicative stress in each case as demonstrated here may facilitate the design of methods to counteract replication stress in primary cells or to enhance it in cancer cells to increase their susceptibility to therapies that target DNA repair. American Society for Biochemistry and Molecular Biology 2018-08-17 2018-06-29 /pmc/articles/PMC6102153/ /pubmed/29959228 http://dx.doi.org/10.1074/jbc.RA118.003740 Text en © 2018 Rodriguez-Acebes et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle DNA and Chromosomes
Rodriguez-Acebes, Sara
Mourón, Silvana
Méndez, Juan
Uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes
title Uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes
title_full Uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes
title_fullStr Uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes
title_full_unstemmed Uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes
title_short Uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes
title_sort uncoupling fork speed and origin activity to identify the primary cause of replicative stress phenotypes
topic DNA and Chromosomes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6102153/
https://www.ncbi.nlm.nih.gov/pubmed/29959228
http://dx.doi.org/10.1074/jbc.RA118.003740
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