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Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication

The Rif1 protein is a negative regulator of DNA replication initiation in eukaryotes. Here we show that budding yeast Rif1 inhibits DNA replication initiation at the rDNA locus. Absence of Rif1, or disruption of its interaction with PP1/Glc7 phosphatase, leads to more intensive rDNA replication. The...

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Autores principales: Shyian, Maksym, Mattarocci, Stefano, Albert, Benjamin, Hafner, Lukas, Lezaja, Aleksandra, Costanzo, Michael, Boone, Charlie, Shore, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5098799/
https://www.ncbi.nlm.nih.gov/pubmed/27820830
http://dx.doi.org/10.1371/journal.pgen.1006414
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author Shyian, Maksym
Mattarocci, Stefano
Albert, Benjamin
Hafner, Lukas
Lezaja, Aleksandra
Costanzo, Michael
Boone, Charlie
Shore, David
author_facet Shyian, Maksym
Mattarocci, Stefano
Albert, Benjamin
Hafner, Lukas
Lezaja, Aleksandra
Costanzo, Michael
Boone, Charlie
Shore, David
author_sort Shyian, Maksym
collection PubMed
description The Rif1 protein is a negative regulator of DNA replication initiation in eukaryotes. Here we show that budding yeast Rif1 inhibits DNA replication initiation at the rDNA locus. Absence of Rif1, or disruption of its interaction with PP1/Glc7 phosphatase, leads to more intensive rDNA replication. The effect of Rif1-Glc7 on rDNA replication is similar to that of the Sir2 deacetylase, and the two would appear to act in the same pathway, since the rif1Δ sir2Δ double mutant shows no further increase in rDNA replication. Loss of Rif1-Glc7 activity is also accompanied by an increase in rDNA repeat instability that again is not additive with the effect of sir2Δ. We find, in addition, that the viability of rif1Δ cells is severely compromised in combination with disruption of the MRX or Ctf4-Mms22 complexes, both of which are implicated in stabilization of stalled replication forks. Significantly, we show that removal of the rDNA replication fork barrier (RFB) protein Fob1, alleviation of replisome pausing by deletion of the Tof1/Csm3 complex, or a large deletion of the rDNA repeat array all rescue this synthetic growth defect of rif1Δ cells lacking in addition either MRX or Ctf4-Mms22 activity. These data suggest that the repression of origin activation by Rif1-Glc7 is important to avoid the deleterious accumulation of stalled replication forks at the rDNA RFB, which become lethal when fork stability is compromised. Finally, we show that Rif1-Glc7, unlike Sir2, has an important effect on origin firing outside of the rDNA locus that serves to prevent activation of the DNA replication checkpoint. Our results thus provide insights into a mechanism of replication control within a large repetitive chromosomal domain and its importance for the maintenance of genome stability. These findings may have important implications for metazoans, where large blocks of repetitive sequences are much more common.
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spelling pubmed-50987992016-11-15 Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication Shyian, Maksym Mattarocci, Stefano Albert, Benjamin Hafner, Lukas Lezaja, Aleksandra Costanzo, Michael Boone, Charlie Shore, David PLoS Genet Research Article The Rif1 protein is a negative regulator of DNA replication initiation in eukaryotes. Here we show that budding yeast Rif1 inhibits DNA replication initiation at the rDNA locus. Absence of Rif1, or disruption of its interaction with PP1/Glc7 phosphatase, leads to more intensive rDNA replication. The effect of Rif1-Glc7 on rDNA replication is similar to that of the Sir2 deacetylase, and the two would appear to act in the same pathway, since the rif1Δ sir2Δ double mutant shows no further increase in rDNA replication. Loss of Rif1-Glc7 activity is also accompanied by an increase in rDNA repeat instability that again is not additive with the effect of sir2Δ. We find, in addition, that the viability of rif1Δ cells is severely compromised in combination with disruption of the MRX or Ctf4-Mms22 complexes, both of which are implicated in stabilization of stalled replication forks. Significantly, we show that removal of the rDNA replication fork barrier (RFB) protein Fob1, alleviation of replisome pausing by deletion of the Tof1/Csm3 complex, or a large deletion of the rDNA repeat array all rescue this synthetic growth defect of rif1Δ cells lacking in addition either MRX or Ctf4-Mms22 activity. These data suggest that the repression of origin activation by Rif1-Glc7 is important to avoid the deleterious accumulation of stalled replication forks at the rDNA RFB, which become lethal when fork stability is compromised. Finally, we show that Rif1-Glc7, unlike Sir2, has an important effect on origin firing outside of the rDNA locus that serves to prevent activation of the DNA replication checkpoint. Our results thus provide insights into a mechanism of replication control within a large repetitive chromosomal domain and its importance for the maintenance of genome stability. These findings may have important implications for metazoans, where large blocks of repetitive sequences are much more common. Public Library of Science 2016-11-07 /pmc/articles/PMC5098799/ /pubmed/27820830 http://dx.doi.org/10.1371/journal.pgen.1006414 Text en © 2016 Shyian et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Shyian, Maksym
Mattarocci, Stefano
Albert, Benjamin
Hafner, Lukas
Lezaja, Aleksandra
Costanzo, Michael
Boone, Charlie
Shore, David
Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication
title Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication
title_full Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication
title_fullStr Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication
title_full_unstemmed Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication
title_short Budding Yeast Rif1 Controls Genome Integrity by Inhibiting rDNA Replication
title_sort budding yeast rif1 controls genome integrity by inhibiting rdna replication
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5098799/
https://www.ncbi.nlm.nih.gov/pubmed/27820830
http://dx.doi.org/10.1371/journal.pgen.1006414
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