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In the absence of ATPase activity, pre-RC formation is blocked prior to MCM2–7 hexamer dimerization

The origin recognition complex (ORC) of Saccharomyces cerevisiae binds origin DNA and cooperates with Cdc6 and Cdt1 to load the replicative helicase MCM2–7 onto DNA. Helicase loading involves two MCM2–7 hexamers that assemble into a double hexamer around double-stranded DNA. This reaction requires O...

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Autores principales: Evrin, Cecile, Fernández-Cid, Alejandra, Zech, Juergen, Herrera, M. Carmen, Riera, Alberto, Clarke, Pippa, Brill, Shlomo, Lurz, Rudi, Speck, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3597701/
https://www.ncbi.nlm.nih.gov/pubmed/23376927
http://dx.doi.org/10.1093/nar/gkt043
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author Evrin, Cecile
Fernández-Cid, Alejandra
Zech, Juergen
Herrera, M. Carmen
Riera, Alberto
Clarke, Pippa
Brill, Shlomo
Lurz, Rudi
Speck, Christian
author_facet Evrin, Cecile
Fernández-Cid, Alejandra
Zech, Juergen
Herrera, M. Carmen
Riera, Alberto
Clarke, Pippa
Brill, Shlomo
Lurz, Rudi
Speck, Christian
author_sort Evrin, Cecile
collection PubMed
description The origin recognition complex (ORC) of Saccharomyces cerevisiae binds origin DNA and cooperates with Cdc6 and Cdt1 to load the replicative helicase MCM2–7 onto DNA. Helicase loading involves two MCM2–7 hexamers that assemble into a double hexamer around double-stranded DNA. This reaction requires ORC and Cdc6 ATPase activity, but it is unknown how these proteins control MCM2–7 double hexamer formation. We demonstrate that mutations in Cdc6 sensor-2 and Walker A motifs, which are predicted to affect ATP binding, influence the ORC–Cdc6 interaction and MCM2–7 recruitment. In contrast, a Cdc6 sensor-1 mutant affects MCM2–7 loading and Cdt1 release, similar as a Cdc6 Walker B ATPase mutant. Moreover, we show that Orc1 ATP hydrolysis is not involved in helicase loading or in releasing ORC from loaded MCM2–7. To determine whether Cdc6 regulates MCM2–7 double hexamer formation, we analysed complex assembly. We discovered that inhibition of Cdc6 ATPase restricts MCM2–7 association with origin DNA to a single hexamer, while active Cdc6 ATPase promotes recruitment of two MCM2–7 hexamer to origin DNA. Our findings illustrate how conserved Cdc6 AAA+ motifs modulate MCM2–7 recruitment, show that ATPase activity is required for MCM2–7 hexamer dimerization and demonstrate that MCM2–7 hexamers are recruited to origins in a consecutive process.
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spelling pubmed-35977012013-03-15 In the absence of ATPase activity, pre-RC formation is blocked prior to MCM2–7 hexamer dimerization Evrin, Cecile Fernández-Cid, Alejandra Zech, Juergen Herrera, M. Carmen Riera, Alberto Clarke, Pippa Brill, Shlomo Lurz, Rudi Speck, Christian Nucleic Acids Res Genome Integrity, Repair and Replication The origin recognition complex (ORC) of Saccharomyces cerevisiae binds origin DNA and cooperates with Cdc6 and Cdt1 to load the replicative helicase MCM2–7 onto DNA. Helicase loading involves two MCM2–7 hexamers that assemble into a double hexamer around double-stranded DNA. This reaction requires ORC and Cdc6 ATPase activity, but it is unknown how these proteins control MCM2–7 double hexamer formation. We demonstrate that mutations in Cdc6 sensor-2 and Walker A motifs, which are predicted to affect ATP binding, influence the ORC–Cdc6 interaction and MCM2–7 recruitment. In contrast, a Cdc6 sensor-1 mutant affects MCM2–7 loading and Cdt1 release, similar as a Cdc6 Walker B ATPase mutant. Moreover, we show that Orc1 ATP hydrolysis is not involved in helicase loading or in releasing ORC from loaded MCM2–7. To determine whether Cdc6 regulates MCM2–7 double hexamer formation, we analysed complex assembly. We discovered that inhibition of Cdc6 ATPase restricts MCM2–7 association with origin DNA to a single hexamer, while active Cdc6 ATPase promotes recruitment of two MCM2–7 hexamer to origin DNA. Our findings illustrate how conserved Cdc6 AAA+ motifs modulate MCM2–7 recruitment, show that ATPase activity is required for MCM2–7 hexamer dimerization and demonstrate that MCM2–7 hexamers are recruited to origins in a consecutive process. Oxford University Press 2013-03 2013-02-01 /pmc/articles/PMC3597701/ /pubmed/23376927 http://dx.doi.org/10.1093/nar/gkt043 Text en © The Author(s) 2013. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Genome Integrity, Repair and Replication
Evrin, Cecile
Fernández-Cid, Alejandra
Zech, Juergen
Herrera, M. Carmen
Riera, Alberto
Clarke, Pippa
Brill, Shlomo
Lurz, Rudi
Speck, Christian
In the absence of ATPase activity, pre-RC formation is blocked prior to MCM2–7 hexamer dimerization
title In the absence of ATPase activity, pre-RC formation is blocked prior to MCM2–7 hexamer dimerization
title_full In the absence of ATPase activity, pre-RC formation is blocked prior to MCM2–7 hexamer dimerization
title_fullStr In the absence of ATPase activity, pre-RC formation is blocked prior to MCM2–7 hexamer dimerization
title_full_unstemmed In the absence of ATPase activity, pre-RC formation is blocked prior to MCM2–7 hexamer dimerization
title_short In the absence of ATPase activity, pre-RC formation is blocked prior to MCM2–7 hexamer dimerization
title_sort in the absence of atpase activity, pre-rc formation is blocked prior to mcm2–7 hexamer dimerization
topic Genome Integrity, Repair and Replication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3597701/
https://www.ncbi.nlm.nih.gov/pubmed/23376927
http://dx.doi.org/10.1093/nar/gkt043
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