The Rpd3-Sin3 Histone Deacetylase Regulates Replication Timing and Enables Intra-S Origin Control in Saccharomyces cerevisiae (original) (raw)

Genome-wide replication profiles indicate an expansive role for Rpd3L in regulating replication initiation timing or efficiency, and reveal genomic loci of Rpd3 function in Saccharomyces cerevisiae

Oscar David Aparicio

Genes & Development, 2009

View PDFchevron_right

Histone Acetylation Regulates the Time of Replication Origin Firing

Maria Vogelauer

Molecular Cell, 2002

View PDFchevron_right

Limiting replication initiation factors execute the temporal programme of origin firing in budding yeast

D. Mantiero

The EMBO Journal, 2011

View PDFchevron_right

Faculty of 1000 evaluation for Limiting replication initiation factors execute the temporal programme of origin firing in budding yeast

Etienne Schwob

F1000 - Post-publication peer review of the biomedical literature, 2000

View PDFchevron_right

Chromatin-dependent and -independent regulation of DNA replication origin activation in budding yeast

Arnold Kristjuhan

EMBO reports, 2012

View PDFchevron_right

Dynamic changes in histone acetylation regulate origins of DNA replication

Ashwin Unnikrishnan

Nature Structural & Molecular Biology, 2010

View PDFchevron_right

Different nucleosomal architectures at early and late replicating origins in Saccharomyces cerevisiae

Monica Segurado

BMC genomics, 2014

View PDFchevron_right

Conservation of replication timing reveals global and local regulation of replication origin activity

Conrad Nieduszynski

View PDFchevron_right

Nucleosome occupancy as a novel chromatin parameter for replication origin functions

Toshio Tsukiyama

Genome Research, 2016

View PDFchevron_right

ORC- and Cdc6-dependent complexes at active and inactive chromosomal replication origins in Saccharomyces cerevisiae

C. Santocanale

The EMBO Journal, 1996

View PDFchevron_right

Sld3, which interacts with Cdc45 (Sld4), functions for chromosomal DNA replication in Saccharomyces cerevisiae

Yon-Soo Tak

The EMBO Journal, 2001

View PDFchevron_right

Epigenetic regulation of replication origin assembly: A role for histone H1 and chromatin remodeling factors

lucia falbo

BioEssays, 2020

View PDFchevron_right

Activation of dormant origins of DNA replication in budding yeast

C. Santocanale

Genes & Development, 1999

View PDFchevron_right

Genome-wide binding map of the histone deacetylase Rpd3 in yeast

Saeed Tavazoie

Nature Genetics, 2002

View PDFchevron_right

Single-molecule analysis reveals clustering and epigenetic regulation of replication origins at the yeast rDNA locus

Etienne Schwob

Genes & Development, 2002

View PDFchevron_right

Mutations Disrupting Histone Methylation Have Different Effects on Replication Timing in S. pombe Centromere

Marc Green, Susan Forsburg

PLoS ONE, 2013

View PDFchevron_right

Histone H3 Thr 45 phosphorylation is a replication-associated post-translational modification in S. cerevisiae

Scott Anderson

Nature Cell Biology, 2010

View PDFchevron_right

Genome-wide chromatin footprinting reveals changes in replication origin architecture induced by pre-RC assembly

Alexander J Hartemink

Genes & development, 2015

View PDFchevron_right

Chromatin Controls DNA Replication Origin Selection, Lagging-Strand Synthesis, and Replication Fork Rates

Harshil Patel

Molecular Cell, 2017

View PDFchevron_right

Histone hypoacetylation is required to maintain late replication timing of constitutive heterochromatin

Joke van Bemmel

Nucleic Acids Research, 2012

View PDFchevron_right

Coupling of Saccharomyces cerevisiae Early Meiotic Gene Expression to DNA Replication Depends Upon RPD3 and SIN3

Teresa Lamb

View PDFchevron_right

Initiation of DNA replication in eukaryotes is a highly conserved and ordered process involving the co-ordinated, stepwise association of distinct proteins at multiple origins of replication throughout the genome. Here, taking Schizosaccharomyces pombe as a model, the role of Rad4

Johanne Murray

2013

View PDFchevron_right

Coupling of Saccharomyces cerevisiae Early Meiotic Gene Expression to DNA Replication Depends Upon RPD3 and SIN3

Teresa Lamb

Genetics, 2001

View PDFchevron_right

Distinct epigenetic features of differentiation-regulated replication origins

Koichi Utani

Epigenetics & chromatin, 2016

View PDFchevron_right

Genome-wide localization of pre-RC sites and identification of replication origins in fission yeast

Makoto T Hayashi

View PDFchevron_right

GCN5 Is a Positive Regulator of Origins of DNA Replication in Saccharomyces cerevisiae

K. Yankulov

PLoS ONE, 2010

View PDFchevron_right

Modeling genome-wide replication kinetics reveals a mechanism for regulation of replication timing

Nicholas Rhind, Scott Yang

Molecular Systems Biology, 2010

View PDFchevron_right

The Origin Recognition Complex Links Replication, Sister Chromatid Cohesion and Transcriptional Silencing in Saccharomyces cerevisiae

Michael Chang

Genetics, 2004

View PDFchevron_right

Genomewide studies of histone deacetylase function in yeast

Jeffrey Hei Yin Tong

Proceedings of the National Academy of Sciences, 2000

View PDFchevron_right

Sds3 (Suppressor of Defective Silencing 3) Is an Integral Component of the Yeast Sin3middle dotRpd3 Histone Deacetylase Complex and Is Required for Histone Deacetylase Activity

D. Shore

Journal of Biological Chemistry, 2000

View PDFchevron_right

Relicensing of Transcriptionally Inactivated Replication Origins in Budding Yeast

Arnold Kristjuhan

Journal of Biological Chemistry, 2010

View PDFchevron_right

Shifts in Replication Timing Actively Affect Histone Acetylation during Nucleosome Reassembly

Howard Cedar

Molecular Cell, 2009

View PDFchevron_right